Love Kumar
Dhandole
,
Sang Hoon
Kim
and
Gun-hee
Moon
*
Extreme Materials Research Center, Korea Institute of Science and Technology (KIST), 5. Hwarang-ro 14-gil, Seongbuk-gu, Seoul 02792, Republic of Korea. E-mail: catalysis@kist.re.kr
First published on 17th May 2022
Methane (CH4) with sp3 hybridization is known as a main constituent of natural gas, and has been utilized as a fuel and a hydrogen reservoir for power plant and transportation applications. Along with the complete oxidation of CH4 to CO2 to retard global warming, the partial oxidation toward the generation of liquid fuels is a big challenge because oxygenated products are more prone to oxidation than CH4. Therefore, the control of the charge carriers and radical species is critical to prohibit the unwanted reaction, in other words, to maximize the formation of desired products. Photo and electrocatalysis are clean and sustainable techniques for CH4 conversion, which do not require extreme experimental conditions (i.e., high temperature and pressure), and indeed, the reaction can be driven under sunlight (i.e., charge carriers generated by light absorption or photovoltaic-assisted electricity). In this review, we discuss how to design catalysts to overcome the bottlenecks in the photo and electrocatalytic partial oxidation of CH4 with focus on (i) an interfacial charge transfer process, (ii) strategies for surface engineering of catalysts, (iii) key factors affecting the reaction mechanism and rate-determining step, and (iv) a systematic investigation of the reaction conditions to lift up the catalytic performance. Finally, we propose the milestone to guide not only the preparation of catalysts that can effectively generate charge carriers and intermediates with a mild oxidation behavior but also the design of reactors for scale-up to prevent undesired reaction pathways.
Fig. 1 (a) Source of methane emission in U.S. in 2019. (b) Enthalpy change of the sequential oxidation of CH4 at 298 K. Redrawn with permission.9 Copyright 1991, Elsevier. |
CH4 with sp3 hybridization is known as a stable molecule in terms of the intrinsic inertness for C–H activation; thus, an energy intensive step requiring a high temperature and pressure is required to convert it to the desired products. In the industry, the steam methane reforming process (CH4(g) + 0.5O2(g) → CO(g) + 2H2(g); CH4(g) + H2O(v) → CO(g) + 3H2(g)) operating at 700–1000 °C and 3–25 bar generates hydrogen (H2) and carbon monoxide (CO), which are utilized as not only fuel in fuel cell vehicle but also precursors to synthesize a wide range of chemicals and polymers.7,8 In order to produce value-added chemicals and fuels via the direct conversion of CH4, reaction with a limited amount of oxygen (i.e., partial oxidation with less than the stoichiometric oxygen content) should be employed for prohibiting the oxidation of CH4 into CO2 and H2O (CH4(g) + 2O2(g) → CO2(g) + 2H2O(v), ). However, it is unavoidable that a huge amount of CO2 is released as a byproduct, and the process is not energetically favorable relative to complete oxidation (e.g., CH4(g) + 0.5O2(g) → CH3OH(g), CH4(g) + O2(g) → HCHO(g) + H2O(v), ) (Fig. 1b).9
Photo and electricity-assisted conversion of CH4 to valuable chemicals and liquid fuels is a future-oriented technology since the reaction proceeds under mild conditions (i.e., room temperature and atmospheric pressure) and renewable energy stemming from sunlight, wind, biomass, etc., is likely to replace fossil fuels. Moreover, the system does not require a complex and centralized infrastructure, which makes it suitable for remote location applications such as offshore drilling rigs, shale gas extraction facilities, and landfills. On the other hand, the bottleneck in the partial oxidation process of CH4 mainly comes from a poor selectivity toward the target products as well as low reactivity owing to the activation energy barrier. The physicochemical property of CH4, including a high homolytic bond dissociation energy for H-abstraction (440 kJ mol−1), weakly-polarized symmetric sp3 geometry, weak acidity, and poor solubility should be considered to develop active catalysts.10–12 Given the relatively effective dissociation behavior of CH4 in thermocatalysis,13,14 a wide range of transition metal-based catalysts such as zerovalent metals, metal oxides, metal complexes, single metal atoms, and metal-exchanged zeolites have been revisited to be utilized as photo, electro, or cocatalysts. Furthermore, as part of methodologies to overcome such a high energy barrier, the addition of hydrogen peroxide (H2O2) enables the formation of hydroxyl radicals (˙OH) with a strong oxidation power (E°(OH/OH−) = 1.90–2.70 VNHE).15
In photocatalysis, electrons and holes generated under the illumination of UV or visible light can initiate the oxidation of CH4, which can be controlled by the electronic structure of semiconducting materials and the operation parameters (e.g., light intensity and wavelength, pH, and dissolved oxygen concentration) (Fig. 2a). Without the intervention of photocatalysts, the direct irradiation with wavelength below 140 and 98.3 nm initiates the excitation of CH4 by the electronic transition (CH4(g) + hv → CH4*(g)) and the ionization of CH4 (CH4(g) + hv → CH4+(g) + e−), respectively.16 When the valence band potential of photocatalysts is deep enough to oxidize CH4, the hole-mediated reaction occurs. Gauging the radical-involved process in aqueous media, two main paths produce ˙OH: (i) a reductive pathway mediated by electron transfer, 1st: O2,dissolved + H+ + e− → HO2(aq), 2nd: HO2(aq) + H+ + e− → H2O2(aq), 3rd: H2O2(aq) + e− → OH− + ˙OH, and (ii) an oxidative pathway mediated by hole transfer: OH− + h+ → ˙OH.17–19 The non-selective ˙OH directly attacks CH4 and consequently facilitates its partial and complete oxidation depending on the experimental conditions. In photocatalysis, photogenerated electron–hole pairs are manipulated within one particle, whose conduction/valence band position thermodynamically determines whether an interfacial charge transfer occurs or not. However, in electrocatalysis, the driving force can be controlled by applying the potential, where the reduction and oxidation reactions are separated by a membrane (Fig. 2b). The problems associated with poor mass transfer and low solubility of CH4 should be avoided to optimize the cell performance. In this regard, a membrane electrode assembly (MEA) with outperforming typical H-type cells is suggested, where each cathode and anode catalyst layer is coated on the front and back side of a separator or membrane, respectively.20 The gas diffusion layer (GDL) coated on the outside of the catalyst layers dramatically improves the mass transport limitation of CH4 and gas phase products.21 Furthermore, the overoxidation can be avoid by the set-up of the flow cell that is able to collect liquid oxygenates from the electrolyte. When designing anode catalysts, it is critical to selectively oxidize CH4 instead of oxygenate products. Indeed, the competitive oxygen evolution reaction and the performance deterioration caused by ohmic, mass transport, and kinetic losses should be under control, especially when the cell voltage or the current density is high.22 For example, to meet the economic viability for the conversion of CH4 to methanol, the selectivity should be at least 70% under the conditions (the overpotential <1 V and the current density >100 mA cm−2 at 100–250 °C).23 A photoelectrochemical (PEC) cell is a combined system of photocatalysis and electrocatalysis; the operation is possible under bias-free conditions (i.e., without electricity) and the oxidation/reduction reaction can be separated via the proper configuration of cells (Fig. 2c). Because of the deep valence band position of O2p and N2p in metal oxides and nitrides, respectively, photogenerated holes with strong oxidation power are feasible to stimulate the oxidation of CH4. Under an applied external bias or using a tandem PEC cell, a prolonged lifetime of charge carriers is achieved as a result of the band bending of the depletion layer, hence increasing the driving force for interfacial hole transfer to CH4.
Fig. 2 Schematic diagram of (a) photocatalysis, (b) electrocatalysis, and (c) photoelectrochemical cell for the oxidation of CH4. Reproduced with permission.77,114,115 Copyright 2019 and 2021, Elsevier. Copyright 2017, Wiley. |
In this review, we overview the state-of-the-art strategies that have been well established for the partial oxidation of CH4 by means of photocatalysis, electrocatalysis, PEC cells, and advanced oxidation process (AOP)-related radical reaction, and discuss the geometric and electronic parameters of catalysts, reactor engineering, and the effect of the surroundings contributing to the activity and selectivity. Understanding the mechanistic pathway of electron- and hole-mediated reactions correlated with the formation of intermediates and products will offer a rational solution to overcome the bottleneck and optimize the catalytic performance as well. Rather than describing the synthesis of new materials and their characterizations, we focus on the surface engineering of catalysts affecting the interfacial charge transfer processes in the microenvironment and key factors changing the reaction mechanism and rate-determining step. At the end, we outline the milestones to lead researchers into the right path for not only the design of promising catalysts but also the engineering of reactors for scale-up.
The introduction of oxidants (e.g., nitrogen oxide, H2O2, O2, and water) or/and heterogeneous catalysts sheds light on the solution to enhance the yield and selectivity since the activation energy can be effectively reduced. For example, the reactive radical species (CH3˙, CH3O˙, etc.) can appear through the attack of nitrogen dioxide (NO2) (e.g., CH4 + NO2 → CH3˙ + HNO2; CH3˙ + NO2 → CH3O˙ + NO). Over the surface of heterogeneous catalysts at low temperature, it is proposed that the C–H bond is cleaved by two mechanistic pathways. One is dehydrogenation involving electrophilic oxygen atoms (M–O sites) as a result of the formation of CH3˙ by H-abstraction (Fig. 3a). The other is deprotonation stemming from the dissociative adsorption of CH4 (i.e., CH4 → CH3− + H+) following an instant coordination onto unsaturated metal centers to form the M–C σ-bond (Fig. 3b).26 The former is a radical-mediated oxidation process with a formal oxidation state (FOS) of C−III for CH4 (i.e., 1st: M + 0.5O2 → M–O for the formation of active site; 2nd: M–O + CH4 → M–O⋯CH4 with sp2 trigonal geometry → M–OH + CH3˙ for the activation of CH4). In the latter, the direct cleavage of CH4 occurs from the complexation with atomic metals accompanied by an FOS of C−IV for CH4 (i.e., M + CH4 → H+ + M–CH3 with sp3 tetragonal geometry). As for the dehydrogenation process, the formation of the M–O active site and the C–H activation should be kinetically balanced to optimize the performance of the catalysts. Photo and electrocatalysis over transition metal oxides can assist the (re)generation of active sites on the catalyst surface. In regard to the deprotonation process, the presence of proton acceptors on the surface of catalysts facilitates the reaction kinetics, and surface oxidizing M–O species that are able to be formed by photo and electrocatalysis may play an important role as a proton acceptor.
Fig. 3 (a) Partial oxidation of CH4 into formaldehyde by electrophilic oxygen atoms (M–O sites) over molybdenum oxide. (b) Adsorption and transition states of CH4 on Pd-doped CeO2 and electron density map (cyan = Pd; red = O; off-white = Ce; gray = C; white = H). Reproduced with permission.116 Copyright 2018, American Chemical Society. |
The study of CH4 conversion in heterogeneous photocatalysis has mainly focused on gas phase systems, where the overoxidation of CH4 was caused by the lattice and surface adsorbed oxygens, which consequently led to the formation of CO and CO2. The cleavage of the C–H bond initiated by the trapped hole (Mz+–O2− + h+ → Mz+–O−˙ in metal oxides), ˙OH, or other electrophilic oxygen species is crucial for the partial oxidation. In contrast, the formation of reactive oxygen species (ROS) should be minimized in order to increase the selectivity for the non-oxidative coupling of CH4.26 As such, the manipulation of proper oxidants and radical species determines whether to synthesize oxygenates or hydrocarbons as the final products. In an aqueous system, the activation of CH4 may be more favorable by mobile ˙OH rather than by the trapped hole (or surface bound ˙OH) in that the solubility of CH4 is extremely low and the adsorption of CH4 on the surface of catalysts is difficult under mild conditions (Fig. 4a).27–31 The opposite outcome was also reported, i.e., mobile ˙OH stimulates the formation of C2H6, whereas the reaction of surface-bound ˙OH with CH3˙ selectively produces methanol (Fig. 4b).32 The true mechanism of photocatalytic CH4 conversion is still a mystery. Nevertheless, it should be noted that the handling of time-dependent ˙OH concentration is important to improve the catalytic performance. The design of flow-type reactors is one of the strategies for not accumulating the oxidative radical species (i.e., to prevent overoxidation).33 In addition, the photo-Fenton process is another approach to supply ˙OH in terms of the activation of H2O2 (Fe3+ + e− → Fe2+; Fe2+ + H2O2 → Fe3+ + ˙OH + OH−) (Fig. 4c).34,35 In spite of much efforts, the issue that the relatively high quantum yield and selectivity are obtained when the conversion of CH4 is extremely low is still unsolved in photocatalysis.
Fig. 4 (a) Mobile ˙OH-mediated CH4 oxidation pathway over the 0.30% RuOx/ZnO/CeO2 composite. Reproduced with permission.31 Copyright 2022, American Chemical Society. (b) Change of the reaction pathway for CH4 oxidation before and after the surface fluorination of WO3. While the surface bound ˙OH produces methanol, mobile ˙OH prefers to generate ethane. Reproduced with permission.32 Copyright 2015, Elsevier. (c) Partial oxidation of CH4 by reactive oxygen species including mobile ˙OH formed through the photo-Fenton process. Reproduced with permission.34 Copyright 2020, Royal Society of Chemistry. |
The electrocatalytic conversion of CH4 to value-added chemicals is driven by an anodic pathway, where active sites generated by applying positive bias (M–O2− → M–O + 2e− or MOx + H2O → MOx(˙OH) + H+ + e−; MOx(˙OH) → MOx–O + H+ + e−) oxidizes CH4. Along with the applied electrode potential, the local chemical environment influenced by adsorbates, supports, electrolyte constitutes, 3D chemical surroundings, temperature, pressure, etc., would also change the CH4 oxidation process.36 The oxygen evolution reaction (OER) is a predominant process when a high voltage is applied for transition metal oxide catalysts such as Co3O4, NiO, and RuO2,37–39 which is known as a competitive reaction for the oxidation of CH4 in aqueous media. Fig. 5a compares the Gibbs free energy of transition metal oxides for water oxidation (O* + H2O → *OOH + H+ + e−) and CH4 activation (O* + CH4 → *O–CH4 → *(HO–CH3)).22 Through the reaction steps, molecular oxygen (*OOH → * + O2 + H+ + e−) and methanol (*(HO–CH3) → *CH3OH → * + CH3OH) are produced as the final product. In both the reactions, the dehydrogenation of *OH (*OH → *O + H+ + e−) that is formed by single electron transfer process (* + H2O → *OH + H+ + e−) creates the adsorbed active oxygen atom (O*) as a transient species. In order to overcome the OER, the design of catalysts with a high Gibbs free energy for water oxidation but with a low one for CH4 activation is highly required, and V2O5, TiO2, SnO2, PtO2, and RhO2 meet the conditions well. Theoretically, the operation in potentials close to 1.23 VNHE is amenable to suppress the OER. The emergence of high-valent metal oxidation states and the change in the surface free energy would increase the coverage of active M–O sites and modify the reaction pathway. Regarding TiO2/RuO2 composites, the introduction of V2O5 switches the reaction pathway as follows.40 Two ruthenium redox couples, Ru4+/6+ and Ru3/+4+, in RuO2 participate in the production of oxygenates and affect the selectivity of the final products. For the formation of methanol, Ru6+ is reduced to Ru4+ sequentially following (i) CH4 + RuO22+ → CH3–RuO2+ + H+ and (ii) CH3–RuO2+ + H+ → CH3OH + RuO2+. On the other hand, formaldehyde is formed by the conversion of ruthenium (Ru6+ → Ru4+ → Ru3+) following the reactions CH4 + 2RuO22+ → RuO+–O–CH2–O–RuO+ → HCOOH + 2RuO+. However, in the presence of V2O5 on RuO2, the redox couple of vanadium (V5+/4+) may not donate enough electrons to form a double bond for formaldehyde and formic acid; thus, the selectivity toward methanol increases (CH4 + V2O42+ → CH3–V2O4+ + H+; CH3–V2O4+ + H+ → CH3OH + V2O32+). Transition metal ions also can be utilized as a redox couple in a homogenous system, where metal centers of organometallic complexes dissolved in the electrolyte turn into a high-valent state by applying anodic bias. As shown in Fig. 5b, the PtII of chloroplatinate accepts CH4 by electrophilic addition reaction, and deprotonation produces the PtII–CH3 complex, which is further oxidized into the PtIV–CH3 complex by virtue of the oxidation by the electrochemically-formed [PtIVCl6]2− (i.e., the Shilov cycle catalyzed by the redox cycle of [PtIVCl6]2− and [PtIICl6]2−).41 When H2O or HCl exists, the PtIV–CH3 complex leads to the formation of methanol or methyl chloride, respectively. The mechanistic pathway based on the PEC oxidation of CH4 is quite analogous to the electrochemical system. The surface-bound ˙OH on the (010) facet of the WO3 photoanode can oxidize in situ formed methanol, resulting in the selective formation of ethylene glycol (Fig. 5c).42 A wide range of strategies to improve the active site and the activation of CH4 toward the production of desired products will be discussed in the following section.
Fig. 5 (a) Comparison of the Gibbs free energy of transition metal oxide catalysts calculated from water oxidation (O* + H2O → *OOH + H+ + e−) and CH4 activation (O* + CH4 → *O–CH4 → *(HO–CH3)). Reproduced with permission.20 Copyright 2020, American Chemical Society. (b) Catalytic cycle of CH4 conversion to methanol or methyl chloride mediated by electrochemically regenerated [PtIVCl6]2−. Reproduced with permission.41 Copyright 2020, American Chemical Society. (c) Reaction pathway to form ethylene glycol on the WO3 photoanode. Reproduced with permission.42 Copyright 2021, Wiley. |
Fig. 6 (a) Simplified photocatalytic process. (b) Diverse factors influencing the photocatalytic performance. IPCE and QE refer to ‘incident-photon-to-electron conversion efficiency’ and ‘quantum efficiency’, respectively. Reproduced with permission.44 Copyright 2017, American Chemical Society. |
Some factors influencing the redox reaction such as experimental conditions, nature of the oxidants, sacrificial reagents, morphology, and surface properties of the photocatalysts should be considered for the effective conversion of CH4.46,47 Photocatalytic partial oxidation of CH4 can be achieved under relatively low temperature and pressure.20,48 Contrarty to thermocatalysis, the mild experimental conditions make it the systematic build-up of reactors much more easy. On the other hand, the addition of oxidants including H2O2, nitric oxide (NO), and O2 could accelerate the photocatalytic activation of CH4 by means of the emergence of highly active radical species such as ˙OH or ˙O2−.49–51 The introduction of suitable sacrificial reagents can also boost up the reaction kinetics with scavenging either photogenerated electrons or holes. Accordingly, more charge carriers survived against the recombination possibly accelerate the activation of CH4.52 The dehydrogenation of CH4 can be achieved by photogenerated holes directly, and the addition of electron acceptors such as Cu2+, Ag+, Fe3+, and methyl viologen (MV2+) may facilitate the kinetics since they are endowed with prolonged lifetime of holes.20,22,53 The concept is analogous to a three-electrode system in electrochemical cells. Consistent with many other studies, the morphology and surface functionality of photocatalysts have significant impact on the photocatalytic oxidation of CH4.20,46
A systematic investigation on the parameters influencing the partial oxidation of CH4 to CH3OH was conducted using bismuth-based photocatalysts (e.g., Bi2WO6, Bi2WO6/TiO2, and BiVO4).29 The experiment conditions were as follows: medium-pressure mercury lamp (450 W), 55 °C, CH4:He (20:80) mixture with continuous purging (22.4 mL min−1), and 1 g L−1 catalyst. Under catalyst-free conditions, the direct photolysis of water converted CH4 into CH3OH, CO2, and C2H6. The selectivity for these products was 22.3, 59.7, and 18.1%, respectively. The CH4 conversion and CH3OH production rate was 0.8% and 2.1 μmol h−1, respectively. The higher selectivity to CH3OH (27.6%) and production rate (4.6 μmol h−1) were achieved by the photocatalytic process with Bi2WO4, whereas the lower selectivity toward C2H6 (9.0%) was observed. When the temperature increased from 55 to 90 °C, the formation of C2H6 was markedly enhanced (almost 3-fold) with a negligible amount of CH3OH. This could be ascribed by a high concentration of ˙CH3 in terms of the dehydrogenation of CH4 by ˙OH in the presence of an excess amount of water vapor. In order to check the effect of dissolved oxygen as an electron acceptor, O2 was continuously purged. While the production of CO2 sharply rose (almost 20-fold), the formation of C2H6 was almost negligible and the CH3OH production rate was barely affected. Introducing Fe3+ as a more effective electron scavenger greatly accelerated the evolution of CO2, which was probably due to the enhanced charge separation and the overoxidation of CH4 by ˙OH (Fig. 7a). Interestingly, the higher selectivity toward CH3OH (below 10%) was obtained in spite of the sharp increase in the total conversion (∼7%). The blank test with Fe3+ solution showed the oxidation of CH4 to CH3OH, CO2, and C2H6, and was attributed to hydroxyl radicals produced in the photo-Fenton process under UV light irradiation. The fabrication of Bi2WO6/TiO2 and BiVO4 was carried out to investigate the effect of the ability of charge separation and the conduction band energy level on CH4 oxidation, respectively (Fig. 7b). Among the three samples, Bi2WO6/TiO2 showed the highest CO2 production rate and lowest CH3OH production rate, which might be due to the production of more ˙OH. Despite such a low CH4 conversion, the selectivity (i.e., higher CH3OH, lower CO2, and C2H6 production) makes BiVO4 a promising material.
Fig. 7 (a) Photocatalytic oxidation of CH4 using Bi2WO6, Bi2WO6 with Fe3+ (1 mM), and a solution of Fe3+. (b) Different coversion rate and selectivity of CH3OH, CO2, and C2H6 for Bi2WO6, Bi2WO6/TiO2, and BiVO4 photocatalysts. Reproduced with permission.29 Copyright 2014, American Chemical Society. (c) Proposed mechanism mediated MV2+/˙+ for the partial oxidation of CH4 in La-doped WO3. (d) Time-dependent profile of products including CH3OH, CO, H2, and O2 under dark and light irradiation for La-doped WO3. Reproduced with permission.27 Copyright 1997, Elsevier. |
Noceti et al. synthesized La- and Pt-doped WO3 and carried out the photocatalytic activity test in the presence of MV2+ as an electron acceptor. This allowed photogenerated holes to oxidize H2O to ˙OH effectively instead of the recombination with electrons (Fig. 7c).27 ˙OH induced the dehydrogenation of CH4 to ˙CH3, and CH3OH was generated by the reaction between ˙CH3 and water (or ˙OH). The electron transfer from the conduction band to protons mediated by MV2+/˙+ led to the production of H2. The La-doped WO3 showed a relatively good catalytic activity (cf., about 4% of CH4 conversion) under mild conditions (at 94 °C and under a constant gas flow of CH4), where by-products including CO, H2, and O2 appeared (Fig. 7d). In the presence of H2O2 as a source to make ˙OH, the loading of FeOOH on WO3 significantly improved the photocatalytic conversion of CH4. However, an excess amount of H2O2 significantly reduced the production of the desired products (i.e., a poor selectivity) owing to overoxidation.54 The introduction of NO2− as an electron scavenger in the BiVO4-dispersed solution lifted up the formation of ˙OH in terms of the concomitant water oxidation by holes. Consequently, the selectivity of CH4 to CH3OH reached up to 93.0% but the low conversion problem still remained.55
BiVO4 with unique morphologies was also investigated for CH4 conversion. Zhu et al. compared the photocatalytic activity of BiVO4 with different morphologies, and concluded that the bipyramid BiVO4 with (102) and (012) surface facets was favorable for the production of CH3OH relative to the platelet-type one with (001) facets.30 The selectivity toward CH3OH reached up to 85% and the mass activity was recorded as 112–134 μmol h−1 g−1. The high selectivity is probably originated from not only the effective interfacial hole transfer but also the adjusted surface energy for the activation of the C–H bond.
Carbon nitride (C3N4), consisting of only carbon and nitrogen, is one of cost-effective visible light-active photocatalysts, and its preparation is also quite easy.56–58 Li et al. observed that CO and CO2 were the main products when bare g-C3N4 was utilized, indicating that the overoxidation of CH4 was severe.59 However, it could be overcome by the fabrication of mace-like g–C3N4–decorated Cs0.33WO3 (g-C3N4@Cs0.33WO3) nanocomposites. As seen in Fig. 8a, the selectivity of CH4 (1000 ppm) to CH3OH, CO, and CO2 was estimated to be 51.59%, 12.08%, and 36.33%, respectively, where the concentration of CH3OH increased linearly with the irradiation time. Cs0.33WO3 was likely to protect the overoxidation of CH3OH. According to the screening test result (Fig. 8b), it was concluded that both ˙O2− and e− are a main source to activate CH4 (i.e., the C–H bond activation via the reductive pathway mediated by ˙O2−) (Fig. 8c), which is in contrast to the result of other studies. The in situ EPR measurement should be helpful to determine the ROS mainly involved as well as to monitor the structure change of the catalysts during the reaction.
Fig. 8 (a) Time-dependent formation of CO2, CO, and CH3OH for g-C3N4@Cs0.33WO3 sample under irradiation. (b) Trapping of the radical species; herein, K2Cr2O7, para-quinone, salicylic acid, and Na2C2O4 were used as sacrificial reagents for electrons, O2˙−, ˙OH, and holes, respectively. (c) Proposed mechanism for the conversion of CH4. Reproduced with permission.59 Copyright 2019, American Chemical Society. |
In the presence of H2O2, the selective conversion of CH4 to CH3OH was accomplished by virtue of the fabrication of highly dispersed iron species on TiO2 photocatalysts.60 In pristine TiO2, CH4 conversion and its selectivity toward CH3OH during 3 h irradiation was 10.9% and 36%, respectively. As seen in Fig. 9a and b, the loading of noble metals on TiO2 adversely affected the photocatalytic performance because zerovalent metals are known as a catalyst for the oxidation of CH4 to CO and CO2. Notably, the loading of 0.33 wt% iron species on TiO2 enhanced the CH4 conversion and the selectivity toward CH3OH. By counting the formation of C2H5OH as the by-product, the total conversion to alcohols was estimated to be 97%. The control experiment clearly supports that the conversion of CH4 mainly proceeded by the photocatalytic activation of H2O2 (Fig. 9c). Indeed, the labelling experiment using 13CH4 revealed a new peak at m/z = 33, which indicates the formation of 13CH3OH+ from the photocatalytic process (Fig. 9d). Considering the X-ray absorption spectroscopy data, it was confirmed that FeOx consisted of FeOOH and Fe2O3, whose oxidation state was close to +3. Along with the enhanced electron transfer process from the TiO2 conduction band to FeOx, the effective activation of H2O2 through a concomitant electron transfer improved the photocatalytic performance (Fig. 9e). As a result, it was proposed that the reaction between ˙CH3 and ˙OH produced CH3OH; the formation of O2˙− should be prohibited to avoid the overoxidation of CH3OH to CO2 (Fig. 9f).
Fig. 9 (a) Photocatalytic conversion of CH4 and (b) production of CH3OH for metals or metal oxides loaded on TiO2 after 3 h of full arc irradiation. (c) CH4 conversion and product yield in control experiment. (d) Labelling experiment of liquid products using 13CH4. (e) Comparison of LSV curves for FTO, TiO2, and FeOx/TiO2. (f) Proposed reaction pathway on the production of radical species. Reproduced with permission.60 Copyright 2018 Springer Nature. |
ZnO is an UV light active photocatalyst, whose bandgap size is almost identical to TiO2 (about 3.2 eV).61 Without adding oxidants or cocatalysts, the photocatalytic conversion of CH4 was almost negligible, indicating that the proper modification of ZnO is highly required.50,62 The loading of cocatalysts (e.g., Pt, Pd, Au, or Ag) on ZnO showed the good photocatalytic conversion of CH4 to CH3OH and CH3OOH under aerobic conditions.62 For instance, 0.1 wt% Au/ZnO resulted in a high photocatalytic activity of 125 μmol h−1 for oxygenates with selectivity over 95%. The isotope experiment exhibited that the oxygen in CH3OH and CH3OOH stemmed from dissolved O2 in water. The result supports the proposed mechanism that ˙CH3 formed by the dehydrogenation of CH4 with holes and ˙OOH generated by the oxygen reduction with electrons are combined together and then turned into CH3OH and CH3OOH. It should be noted that water oxidation was not considered in the overall reaction. Therefore, the balance between the reductive and oxidative pathway is critical to increase the selectivity. The different mechanism was also proposed in the Au/ZnO photocatalyst.50 The dehydrogenation of CH4 to ˙CH3 by ˙OH can proceeded through both reductive and oxidative pathways; consequently, the reaction of ˙CH3 with either ˙OH or O2˙− produced CH3OH. In here, both H2O and O2 were invloved in the reaction.
Fig. 10 Parameters consisting of catalyst discovery, electrolyte engineering, and reactor design interconnected with three factors including energetic barrier, frequency of rare events, and techno-economic analysis to be considered for the development of effective electrocatalytic CH4 partial oxidation systems. Reproduced with permission.63 Copyright 2019, Elsevier. |
Fig. 11 (a) CH4 oxidation products and faradaic efficiency over diverse transition metal oxides in 0.1 M potassium phosphate buffer (pH = 7). The result of PtO2 was obtained in 1 M KCl (pH = 7) because of inactivity in 0.1 M potassium phosphate buffer. (b) Scaling relationship between the measured binding energy of *CH4 and the Madelung potential of metal in transition metal oxides. (c) Faradaic efficiency of methanol oxidation to CO2 over TiO2 with applied potential in the presence/absence of Cu2O3. Reaction profile (d) for OER on the undercoordinated metal sites, (e) for OER on the bridging oxygen binding site, and (f) for CH4 oxidation on the undercoordinated metal sites in transition metal oxides. (g) Possible reaction pathways for CH4 oxidation and OER in an aqueous electrolyte. Reproduced with permission.74 Copyright 2021, National Academy of Sciences. |
Fig. 12 (a) Free energies of the OH*, O*, and OOH* formation steps in OER as functions of ΔEOH* − ΔEO*. (b) The energy barrier of C–H bond activation (ΔEa,TS; TS means transition state) as a function of ΔEOH* − ΔEO*. (c) Free energy diagram of stable products in methane oxidation at different electrode potentials (1.40, 1.80, and 2.40 VRHE). Inset: schematic diagram of the electrocatalytic conversion of CH4 on TaHf2C2O2 and blue arrows mean the energetically favorable route. Band filling of oxygen and carbon adsorbed on (d) TaHf2C2O2 and (e) metal Pt. Reproduced with permission.75 Copyright 2021, Elsevier. |
Only few research articles have reported the electrocatalytic partial oxidation of CH4 at room temperature.40,77–81 The introduction of V2O5 in TiO2/RuO2 composites increased the current density and selectivity toward CH3OH when a gas diffusion electrode (GDE) cell was utilized in 0.1 M Na2SO4.40 The redox couple of V5+/4+ would not give electrons to form a double bond; thus, the selectivity toward CH3OH increased against HCHO and HCOOH. Park's group reported the partial oxidation of CH4 to oxygenates using Co3O4/ZrO2 nanocomposites,77 Co3O4-incorporated ZrO2 nanotubes,79 and ZrO2/NiCo2O4 nanowires81 using the typical single cell reactor. The Co3O4/ZrO2 nanocomposites led to the formation of acetaldehyde as a major intermediate in the first 3 h, and finally turned into 1- and 2-propanol as the main products after 12 h in 0.5 M Na2CO3 (Fig. 13a). It was proposed that the electrochemically formed carbonate radicals would initiate the dehydrogenation of CH4 and the addition reaction of ˙CH3 to acetaldehyde generated C3 products. Herein, the role of ZrO2 was assigned as a promoter to adsorb carbonates. In the control experiment, no increase in the LSV curve was observed for pristine Co3O4 regardless of CH4 purging. With increasing ZrO2 content, the current density increased and then decreased, supporting that the optimal ratio of ZrO2 to Co3O4 should be considered to design highly-efficient electrocatalysts (Fig. 13b). The electrocatalytic performance was further enhanced either by the morphology control of Co3O4/ZrO2 with Co3O4 nanoparticles embedded on the surface of ZrO2 nanotubes79 or ZrO2/NiCo2O4 quasi-solid solution nanowires,81 which improved the mass transfer problem of CH4.
Fig. 13 (a) Production efficiencies of 1-propanol, 2-propanol, and acetaldehyde with the reaction time for ZrO2/Co3O4. (b) LSV curves of ZrO2/Co3O4 with a different amount of ZrO2 loaded. Reproduced with permission.77 Copyright 2017, Wiley. (c) Yields of ethanol and methanol produced over NiO/Ni catalysts with different NiO contents with increasing potential. (d) Energy profiles for CH4 oxidation to CH3OH and C2H5OH at the NiO(200)/Ni(111) interface. Reproduced with the permission.78 Copyright 2020, Elsevier. |
The electrocatalytic conversion of CH4 to C2H5OH was investigated on NiO/Ni and Rh/ZnO catalysts. The NiO/Ni electrode in the potential range from 1.37 to 1.43 VRHE produced C2H5OH, whose selectivity was recorded to be about 81–89% in 0.1 M NaOH.78 Counting the formation of CH3OH as a byproduct, the selectivity toward oxygenates was estimated to be over 90%. The yield of C2H5OH and CH3OH increased up to 1.40 V, and then decreased with applied potential (Fig. 13c). The DFT calculation revealed that the formation of C2H5OH is more favorable than that of CH3OH, and the proposed reaction pathway follows the sequential steps (i.e., CH4* → CH3* + H*; CH3* → CH2* + H*; CH2* + OH* → CH2OH*; CH3* + CH2OH* → CH3CH2OH*) (Fig. 13d). Regarding Rh/ZnO nanosheets, the conversion, faradaic efficiency, and selectivity toward C2H5OH was measured as 789 μmol gcat−1 h−1, 22.5%, and 85%, respectively, at 2.2 VRHE in 0.1 M KOH.80 It was suggested that Rh nanoparticles on ZnO nanosheets accelerated the adsorption of CH4 and the formation of active oxygen species. The operando analysis is a powerful tool to understand the real-time process involved in the activation and conversion of CH4. Hahn et al. investigated the activation of CH4 on the Pt catalyst at room temperature using attenuated total reflectance-surface enhanced infrared absorption spectroscopy (ATR-SEIRAS), and it was confirmed that the intermediates –CHO (aldehyde) and –COOH (acid) were formed during the oxidation of CH4.82 Furthermore, the intermediates were detected by in situ linear potential sweep-Fourier transform infrared spectroscopy (LPS-FTIRS). Together with CO2 (2345 cm−1), CO (2020 cm−1), and H2O (1650 cm−1) peaks, a broad peak (1750 cm−1) was observed due to the formation of aldehydic and ketonic species with the –CO moiety. At 1.46 V, the intermediate peaks for –CHO (1719 cm−1) and –COOH (2027 cm−1) were measured on the Pt electrode surface. The electrochemical oxidation of CH4 over Pt/C, Pt/C-ATO, Pd/C, and Pd/C-ATO electrocatalysts was also confirmed by in situ ATR-Fourier transform infrared (ATR-FTIR) spectroscopy.83 Herein, the intermediates –CHO and CO were observed in the potential range from 0.05 to 1.2 V, which were clarified as intermediates for the production of CO2.
Amano et al. reported the activation of CH4 on WO3 photoanode with a high quantum efficiency under visible light irradiation at room temperature.84 Applying external bias enabled the use of photogenerated electrons for H2 production and the deeper depletion layer formed in WO3 suppressed the recombination of charge carriers. In order to solve the low solubility and mass transport problems of CH4, a bimodal (meso and macro) porous WO3 photoanode was fabricated via the deposition of WO3 nanoparticles on the microporous 3D Ti microfiber. The concentration of protons between the photoanode and cathode chambers was balanced by the assembly with Nafion membrane (Fig. 14a and b). Since the valence band maximum of WO3 is more positive than the standard electrode potential of CH4 oxidation (CH4 + h+ → ˙CH3 + H+ + e−; E°(˙CH3/CH4) = 2.06 VSHE), the photogenerated holes can dehydrogenate CH4 into a methyl radical (˙CH3). Consequently, the homogeneous coupling of ˙CH3 brought about the production of C2H6 (˙CH3 + ˙CH3 → C2H6). The gas–electrolyte–solid triple-phase boundary significantly improved the oxidation of the inert C–H bond of CH4 and led to the formation of CO2 and C2H6. When the concentration of CH4 was reduced in the feed (i.e., the stream of Ar with 10% CH4 and 3 vol% H2O), the production of C2H6 was negligible (Fig. 14c). In reverse, as the concentration of CH4 fed increased, C2H6 production steadily increased. Under 97/3 vol% of CH4/H2O stream, the selectivity and the faradaic efficiency toward C2H6 reached up to 53.5% and 12%, respectively. These results indicate that the access of gaseous CH4 to the surface of the WO3 photoanode is important for preferential C–H bond activation by photogenerated holes. The selectivity toward C2H6 could be improved by making the surface of WO3 hydrophobic for the effective adsorption of CH4 instead of water.
Fig. 14 (a) PEC system (left) and its expansion to MEA (right) for CH4 activation. (b) SEM image of WO3 deposited on Ti microfibers. Inset: picture of the PEC electrode (left lower) and MEA (right upper). (c) Time-dependent production of O2, CO2, and C2H6 in the photoanode compartment under 453 nm blue LED light irradiation at an applied voltage of 1.2 V. Reproduced with permission.84 Copyright 2019, American Chemical Society. |
Ma et al. optimized the reactivity of ˙OH on WO3via facet tuning to produce ethylene glycol (EG) under mild conditions without adding any oxidants.42 Three WO3 photoanodes with different (010) facet ratios including WO3 nanobar arrays (WO3NB), WO3 nanoplate arrays (WO3NP), and WO3 nanoflake arrays (WO3NF) were fabricated for comparison (Fig. 15a). Among them, WO3NB with a predominant (010) facet revealed a superior CH4 conversion performance. To confirm the production of ˙OH on the catalysts with different facets, electron paramagnetic resonance (EPR) spectroscopy was measured using 5,5-dimethyl-1-pyrroline-N-oxide (DMPO) as a spin-trapping agent. The signal for DMPO–˙OH on WO3NB was stronger than that of other WO3 structures. Based on the result that no H2O2 formation was observed during the experiment, it was expected that the oxidation of water was the only source to provide ˙OH. Consequently, the EG production rate, selectivity, and solar-to-fuel efficiency in WO3NB were recorded to be 0.47 μmol cm−2 h−1, 66%, and 0.12% at 1.3 VRHE, respectively (Fig. 15b). The in situ diffuse reflectance infrared Fourier-transform spectroscopy (DRIFTS) data support that EG was steadily produced on the PEC cell (Fig. 15c). The typical peaks of EG at 2853 and 2924 cm−1 (cf., assigned to methylene (CH2) symmetric C–H stretching and antisymmetric C–H stretching, respectively) were measured, which increased with the irradiation time. Moreover, the emergence of methyl (CH3) symmetric C–H stretching at 2879 cm−1 and antisymmetric C–H stretching of CH3OH at 2957 cm−1 indicate that CH3OH was formed as an intermediate during the PEC process. Therefore, the mechanism can be explained as follows: CH3OH was formed by the reaction between ˙OH and ˙CH3, which was further attacked by ˙OH, finally producing the EG (Fig. 15d).
Fig. 15 (a) WO3 with a different (010) facet ratio grown on FTO glasses. (b) EG production rate in term of PEC CH4 conversion on WO3 photoanodes under 100 mW cm−2 irradiation. (c) In situ DRIFTS for WO3NB during the reaction. (d) Proposed mechanism for the conversion of CH4 to EG. Reproduced with permission.42 Copyright 2021, Wiley. |
It should be worth highlighting other metal oxide candidates for PEC cell applications. Fe2O3 (hematite) has a suitable valence band minimum for CH4 oxidation and an ideal visible light absorption with n-type property, whose band gap energy was about 2.1–2.2 eV.85,86 Iron oxide is abundant in nature, cheap, and non-toxic, and the hematite-based photoanode is very stable during OER in an alkali electrolyte.87 BiVO4 with a bandgap of 2.4 eV shows an excellent PEC OER performance and is relatively stable in neutral pH.88,89 Metal chalcogenide, C3N4, and metal carbide are also good candidates for visible light PEC CH4 oxidation because the outstanding photocatalytic activity was already reported for the partial oxidation of CH4 in slurry-type systems.90,91 The modification of the bulk and surface properties of semiconducting materials and cocatalysts or the introduction of highly active photocatalysts and electrocatalysts in PEC systems should be helpful to advance the design of the PEC device with high performance under sunlight.
In the presence of H2O2 under mild conditions (below 100 °C), (i) iron-based catalysts (e.g., single iron atoms confined in graphene,92 ferric chloride (FeCl3),93 Fe–Cu-ZSM-5,94 Fe/ZSM-5,95,96 Fe/Fe3C,35 N-doped carbon supported iron species,97etc.), (ii) atomic metals or metal nanoparticles embedded/loaded on metal oxides (e.g., single atomic Rh/ZrO2,98 AuPd/TiO2,99 single atomic Cr/TiO2,100 Rh/CeO2,101 single atomic Cu/C3N4,102etc.), and (iii) bimetallic materials (e.g. Pd@Pt core–shell nanoparticles,103 Au–Pd alloys,104 AuPdx colloids,105etc.) have been investigated for the partial oxidation of CH4. For example, graphene-confined single Fe sites (FeN4/graphene nanosheets (GNs)) (Fig. 16a) effectively oxidized CH4 to C1 oxygenated products including CH3OH, CH3OOH, HOCH2OOH, and HCOOH in the liquid phase, whose turnover frequency (TOF) reached to 0.47 h−1 at room temperature.92 The labelling experiment using 13CH4 revealed that C1 oxygenated products were originated from the partial oxidation process instead of the self-oxidation of graphene (Fig. 16b). As the Fe content increased from 1.5 to 4.0 wt%, the yield of C1-oxygenated products increased from 27 to 100 μmol; however, the turnover number (TON) peaked at 2.7 wt% Fe and then decreased with Fe wt%. While more active sites emerged with the increase in the Fe content, the agglomeration among excess Fe species adversely affected the catalytic performance. Besides, with longer reaction time, the C1-oxygenated products were prone to mineralization into CO2. Under the optimized conditions, the selectivity of C1-oxygenated products and CO2 was 94 and 6%, respectively. Based on in operando time-of-flight mass spectrometry (TOF-MS) data, it was confirmed that the formation of CH3OH and CH3OOH was predominant in the first 300 min, whereas HOCH2OOH and HCOOH markedly increased in the last 300 min (Fig. 16c). The DFT calculation supports that the active oxygen atom can be easily formed by the adsorption and decomposition of H2O2 on the Fe site (Fig. 16d). The methyl radical generated through CH4 activation over O–FeN4–O would attack the hydroxide and hydroperoxide groups, which produced CH3OH and CH3OOH, and the further oxidation of CH3OH allowed to form HOCH2OOH and HCOOH (Fig. 16e). As FeCl3 was utilized as a homogenous catalyst in the presence of H2O2, the yield of CH3OH and HCO2H was recorded as 1.97 and 33.3 mmol gcat−1 with a TOF of 5.7 h−1, respectively.93 It was proposed that the hydrated ferryl ion, [(H2O)5FeIVO]2+, that originated from the reaction with H2O2 (i.e., Fe3+ + H2O2 → [FeIVO]2+ + ˙OH + H+ or Fe2+ + H2O2 → [FeIVO]2+ + H2O) led to the activation of CH4 and consequently the formation of CH3OH. On the other hand, ˙OH provided by the Fenton process brought about the production of HCO2H, CO, and CO2.
Fig. 16 (a) HAADF-STEM image of FeN4/GN. Single iron atoms are marked by red circles. (b) TOF-MS data for the labelling experiment using 13CH4. The W denotes water molecule. (c) In operando TOF-MS data collected under different pressure of 13CH4. (d) Energy change of FeN4 center by the adsorption of H2O2. (e) Proposed mechanism on the partial oxidation of CH4 over FeN4/GN catalysts. Reproduced with the permission.92 Copyright 2018, Elsevier. |
On irradiating UV light with a wavelength below 380 nm, the direct photolysis of H2O2 drove the formation of ˙OH, which promoted the oxidation of CH4 to CH3OH and HCO2H.33 With an excess amount of H2O2, the consumption of ˙OH by H2O2 (H2O2 + ˙OH → ˙OH2 + H2O; ˙OH2 + ˙OH → O2 + H2O) decreased the CH4 conversion. Although the overoxidation of CH4 was inevitable, the complete mineralization to CO2 was significantly retarded by establishing the steady state condition that H2O2 was added at a constant and relatively low rate. To overcome the drawback, especially a need for energy-intensive UV light and low quantum yield, the activation of H2O2 on diverse photocatalysts (e.g., WO3,49,53 g-C3N4,47 TiO2,34 iron clusters anchored on carbon aerogel,106 and BiVO455) and its correlation with the oxidation of CH4 has been carried out. Under simulated solar light irradiation, the system containing TiO2, Fe2+, and H2O2 transformed CH4 to CH3OH, whose yield and selectivity reached up to 471 μmol g−1 h−1 and 83%, respectively.34 The conduction and valence band energy levels of TiO2 are suitable for the redox reaction of ferric/ferrous ions and the formation of ˙OH by virtue of either water oxidation or H2O2 activation (Fig. 17a). Compared with the cases (e.g., TiO2 + Fe2+ + light; TiO2 + H2O2 + light; Fe2+ + H2O2), a higher yield and selectivity toward CH3OH was achieved (Fig. 17b). The screening test using K2Cr2O7, para-quinone, salicylic acid, and Na2C2O4 as scavengers of e−, O2˙−, ˙OH, and h+, respectively, supports (i) the regeneration of Fe2+ is induced by the electron transfer, (ii) the activation of H2O2 produces ROS, and (iii) the oxidation of CH4 proceeds through photogenerated holes and ROS (Fig. 4c and 17c).
Fig. 17 (a) TiO2 conduction and valence band position and redox potentials of the active species. (b) Yield of CH4 to CH3OH under AM 1.5 at room temperature for different systems. (c) Scavenger experiments of ROS (h+, e−, ˙OH, and ˙O2−). Reproduced with permission.34 Copyright 2020, Royal Society of Chemistry. (d) HAADF-STEM image and elemental mapping of carbon and iron for 0.75FeCA800-4. (e) Photocatalytic conversion kinetics and selectivity for the partial oxidation of CH4 to CH3OOH, depending on the H2O2 concentration. (f) In situ DRIFTS spectra during photocatalysis. (g) In situ EPR spectra of the Feδ+ contents with the irradiation time. (h) The proposed mechanism of the conversion of CH4 to CH3OOH over 0.75FeCA800-4. Reproduced with the permission.106 Copyright 2021, American Chemical Society. |
The positively charged iron clusters anchored on 3D porous carbon aerogel, denoted as 0.75FeCA800-4, has a good activity for the partial oxidation of CH4 to CH3OOH. The 3D porous carbon aerogel with a high electrical conductivity is a good support; therefore, iron clusters with size from 0.25 to 0.45 nm were uniformly dispersed (Fig. 17d). Under simulated solar light irradiation, the production rate and selectivity toward CH3OOH were 13.2 mmol gFe−1 h−1 and almost 100% in the presence of H2O2 (2 mmol), respectively (Fig. 17e). The trend that an excess amount of H2O2 significantly cut down the selectivity owing to the overoxidation of CH3OOH to CO2 was also observed. The in situ DRIFTS and in situ EPR are powerful tools to understand the real-time reaction mechanism during photocatalysis. As seen in Fig. 17f, new peaks observed at 1306/1348, 1453, and 1550 cm−1, assigned to *C–H, *C–O, and *CH3–O groups, respectively, increased with the irradiation time. Indeed, Fig. 17g demonstrates that the intensity of both the high spin state Feδ+ at 200 G and the low spin state Feδ+ at 3750 G was markedly enhanced with the irradiation time, which indicates that Feδ+ gave electrons to the carbon atoms. The proposed mechanism is as follows: (i) photoexcitation of carbon atoms in 0.75FeCA800-4, (ii) electron transfer from Feδ+ to C*, (iii) formation of C*−, (iv) production of CH4−via the electron transfer from C*− to CH4, (v) generation of Feδ+–CH3* intermediates, (vi) reaction of Feδ+–CH3* with ˙OH formed by the activation of H2O2, (vii) formation of Feδ+–CH3O* intermediates, (viii) reaction of Feδ+–CH3O* with ˙OH, and finally, (ix) the production of CH3OOH (Fig. 17h).
The introduction of a relatively excess amount of oxidants and their activation to ROS with high oxidation power may damage the membrane in electrochemical cells. Therefore, oxygen reduction reaction (ORR) catalysts should promote 4e− transfer (O2 + 4H+ + 4e− → 2H2O) with suppressed 2e− transfer (O2 + 2H+ + 2e− → H2O2) to be utilized for a proton exchange membrane fuel cell (PEMFC).107 Although no studies have been reported so far except for one paper, the cathodic activation of H2O2 for CH3OH production in a PEMFC,108 the recent research work provides a profound insight into the feasibility of producing and handling reactive species for electrocatalytic CH4 conversion.109 The cobalt–nickel mixed spinels of Co2NiO4 consisting of tetrahedral Ni2+ and octahedral Co3+ and CoNi2O4 composed of octahedral Ni2+ and tetrahedral Co3+ (Fig. 18a) were favorable for generating active chlorine species (*Cl), which promoted the production of CH3Cl under an applied potential. The surface adsorbed *Cl as an intermediate of the chlorine evolution reaction (CIER) stimulated the cleavage of the C–H bond and overoxidation could be avoided by the release of gaseous CH3Cl from the electrolyte. In 0.5 M Na2SO4 electrolyte, the current density in the LSV curve was quite low due to a high energy barrier, and only CO2 was evolved (Fig. 18b). However, when an excess amount of Cl− was present (5.4 M NaCl), the current density at 2.3 V rose up to 19.5 mA cm−2 and the CIER-assisted pathway prevailed on the OER-assisted one. The in situ EPR experiment confirmed the formation of *Cl and subsequently ˙Cl, where DMPO–Cl˙, DMPO–OH˙, and DMPO–OCl˙ were simultaneously observed (Fig. 18c). Regarding the conversion of CH4 to CH3Cl, a higher overpotential to make active oxygen atoms (Ni–O*) is required; thus, the overoxidation of liquid oxygenates is inevitable (Fig. 18d).
Fig. 18 (a) Co–Ni mixed spinel structures consisting of CoNi2O4 (left) and Co2NiO4 (right). (b) LSV curve (upper panel) and partial current density for products in 0.5 M Na2SO4 and saturated NaCl (lower panel). (c) In situ EPR spectrum collected using DMPO as a radical capture reagent in electrocatalysis. (d) Different mechanism of CH4 oxidation in terms of ClER (upper panel) and OER (lower panel). Reproduced with the permission.109 Copyright 2021, Wiley. |
Photocatalysis follows a series of processes including (i) photon absorption, (ii) exciton separation, (iii) carrier diffusion, (iv) carrier transport, (v) catalytic efficiency, and (vi) mass transfer of the reactants and products. Therefore, the overall reaction kinetics are governed by the most sluggish step, which means that all the six factors should be optimized in order to increase the photocatalytic activity. In addition, the electronic structure of the photocatalyst (i.e., the bandgap, conduction and valence band position, energy level of the trapping sites for charge carriers, and Fermi level equilibrium) is associated with the thermodynamics that determine whether the reaction proceeds or not. When focusing on not only interfacial charge transfer but also the activation of the C–H bond, the direct dehydrogenation of CH4 likely proceeds by photogenerated holes over the surface of the photocatalysts. On the other hand, ˙OH provided from the cleavage of in situ formed H2O2 by electron transfer or hole-mediated water oxidation enables to abstract hydrogen from CH4 in the proximity of the catalysts. The formation of ˙OH and O2−˙ is adjusted by the addition of H2O2 or by the reaction under aerobic conditions. The combination of ˙CH3 with ˙OH produces oxygenates, and the selectivity toward the desired products can be improved by controlling the concentration of ˙OH by suppressing the overoxidation. One of the strategies will be the introduction of a proper scavenger of ˙OH; for example, carbonate (CO32−) effectively quenches ˙OH (k(HCO3−) = 8.5 × 106 M−1 s−1 and k(CO32−) = 3.9 × 108 M−1 s−1),110 resulting in the formation of CO3˙− with a higher standard reduction potential (E°(CO3˙−/CO32−) = 1.63 V).111 Likewise, such a high oxidation power of ˙OH would be systematically reduced by electron transfer from the halide ions (E°(Cl˙/Cl−) = 2.5 V; E°(Cl2˙−/Cl−) = 2.2 V; E°(Br˙/Br−) = 2.0 V; E°(Br2˙−/Br−) = 1.7 V).112 Another approach is the control of the HOMO and LUMO energy levels in terms of the synthesis and modification of transition metal complexes. Not only the change in the oxidation potential of ˙OH by redox couples but also the emergence of high-valent transition metal ions may assist C–H bond activation and increase the yield and selectivity. Beyond the utilization of H2O2, persulfate (peroxymonosulfate and peroxydisulfate), periodate, hypochlorous acid, etc., are also good candidates to supply the radical species through the photocatalytic process. As a non-radical reaction pathway, the influence of singlet oxygen (1O2) formed via the conversion of the singlet excited state to the triplet excited state on the photocatalytic oxidation of CH4 needs to be proven.
The electrocatalytic partial oxidation of CH4 to oxygenates under mild conditions is still at quite an early stage, and very limited studies have been undertaken so far. The design of appropriate electrocatalysts and electrochemical cells in consideration of factors such as an electrode configuration, a membrane, an electrolyte, a surrounding condition, etc., is critical to increase the conversion of CH4 and its selectivity to desired products. In general, high selectivity is achieved at a low current density (i.e., a low conversion yield due to a small number of electrons involved), and as the current density rises, the selectivity significantly decreases due to not only the overoxidation of the target products but also the competitive reaction with OER. To overcome the competitive OER, the development of catalysts with a high Gibbs free energy for water oxidation but with a low one for CH4 activation is highly required. Under an applied bias, active M–O sites on transition metal oxides promote the dehydrogenation of CH4, in which the catalyst with a high CH4 binding energy but a low Madelung potential leads to a higher performance. In the presence of proton acceptors, the deprotonation pathway drives the activation of the C–H bond as well. Therefore, materials that can simultaneously stimulate the dehydrogenation and deprotonation will be favorable for the conversion of CH4, where more precise control of the active sites is essential to optimize the selectivity. To better understand the reaction mechanism, real-time spectroscopy is necessary to monitor the change of (i) the oxidation states and electronic structures of transition metal-based catalysts, (ii) reorientation of surface atoms and defects, (iii) electrode surface pH and interaction with electrolyte ions confined in the microenvironment, (iv) the formation of transient species and intermediates, and their correlation with DFT calculation. Through either by the fabrication of MEAs or the modulation of cells by stacking, the size of the device can be scaled-up; thus, the productivity increases to meet the demand of industries. The development of membranes that enable the desired products to be transported from the anode to the cathode chamber, and electrolyte engineering that may help to stabilize oxygenates by solvation (e.g., ionic liquid and H2SO4) may effectively retard the overoxidation process. As proposed in photocatalysis and electrocatalysis, the same strategy may be valid to optimize the performance of PEC cells.
The radical-mediated AOP technique looks similar to a double-edged sword because ROS formed by the activation of oxidants accelerate the oxidation of CH4 but the excess amount drives the complete mineralization into CO2. Indeed, the prolonged reaction time overoxidizes the desired products. Therefore, the addition of H2O2 at regular time intervals to maintain a steady state condition may be more advantageous to reach a higher selectivity. The activation of oxidants into ROS occurs via heterogeneous catalysis, whereas the dehydrogenation of CH4 by ROS is proceeded in the homogeneous phase. Ideally, if ROS are instantaneously produced (i.e., 100% conversion of H2O2 to ˙OH within a few seconds) and the concentration of dissolved CH4 is enough to consume all ˙OH, overoxidation will be suppressed due to the termination of the radical reaction in the second scale. The concept is quite similar to burst nucleation to synthesize uniform-sized metal nanoparticles.113 Under atmospheric pressure, micro or nanobubbling of CH4 would increase the solubility of CH4 as well as the collision probability of ROS. In order to commercialize the electrocatalytic CH3OH production directly from CH4, the conversion efficiency should reach up to 70% by satisfying the operation condition (i.e., cell area ≥200 cm2, current density ≥100 mA cm−2, and applied bias ≤1 V).23 Although it may seem like a distinct future when it comes to realization under mild conditions, it is a promising research topic and rapid scientific progress will advance the deployment of self-standing reactors at commercial scales.
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