Zelio
Fusco
*a,
Dirk
Koenig
b,
Sean C.
Smith
b and
Fiona Jean
Beck
a
aRenewable Fuel Group, School of Engineering, College of Engineering, Computing and Cybernetics, The Australian National University, Canberra, ACT 2601, Australia. E-mail: zelio.fusco@anu.edu.au
bIntegrated Materials Design Lab, The Australian National University, Canberra, ACT 2601, Australia
First published on 16th April 2024
Photoreduction of carbon dioxide (CO2) on plasmonic structures is of great interest in photocatalysis to aid selectivity. While species commonly found in reaction environments and associated intermediates can steer the reaction down different pathways by altering the potential energy landscape of the system, they are often not addressed when designing efficient plasmonic catalysts. Here, we perform an atomistic study of the effect of the hydroxyl group (OH) on CO2 activation and hot electron generation and transfer using first-principles calculations. We show that the presence of OH is essential in breaking the linear symmetry of CO2, which leads to a charge redistribution and a decrease in the OCO angle to 134°, thereby activating CO2. Analysis of the partial density of states (pDOS) demonstrates that the OH group mediates the orbital hybridization between Au and CO2 resulting in more accessible states, thus facilitating charge transfer. By employing time-dependent density functional theory (TDDFT), we quantify the fraction of hot electrons directly generated into hybridized molecular states at resonance, demonstrating a broader energy distribution and an 11% increase in charge-transfer in the presence of OH groups. We further show that the spectral overlap between excitation energy and plasmon resonance plays a critical role in efficiently modulating electron transfer processes. These findings contribute to the mechanistic understanding of plasmon-mediated reactions and demonstrate the importance of co-adsorbed species in tailoring the electron transfer processes, opening new avenues for enhancing selectivity.
New conceptsThe development of plasmonic photocatalysts for CO2 reduction is slowed down by a lack of atomistic understanding of the CO2 behaviour on metallic structures under optical bias. Illuminated metallic nanoparticles generate hot electrons which can be transferred to adsorbate molecular species, thereby initiating a chemical reaction. While it is accepted that co-adsorbed species and/or reaction intermediates can influence the reaction pathways, this aspect is often overlooked. We report a first-principles investigation of plasmon-driven CO2 reduction in the presence of a co-adsorbed hydroxyl group (OH) on a gold cluster. By using time-dependent density functional theory, we investigate the dynamics of plasmon excitation and decay and we analyse the energy distribution of hot electrons and quantify their transfer to the molecular adsorbates as a function of the distance, excitation frequency and an increasingly non-monochromatic frequency distribution. We demonstrate the importance of co-adsorbed species in changing the energetics of the system, showing that the OH group mediates the orbital hybridization between gold and CO2 resulting in more accessible states, thus facilitating charge transfer. These findings contribute to the mechanistic understanding of plasmon-mediated reactions and demonstrate the importance of co-adsorbed species in tailoring the electron transfer processes, opening new avenues for enhancing selectivity. |
Once generated, HEs can be transferred to nearby molecules directly or indirectly.26,27 In the former process, HEs are directly excited from the metal into the unoccupied molecular orbitals of interacting acceptor adsorbates. The latter process comprises HEs generated within metal nanoparticles, subsequently being scattered to empty states of surface-adsorbed molecules with suitable overlaps in energy and momentum distribution. The direct injection of HEs is a faster and more efficient process compared to the indirect transfer,28 and offers great potential for enabling high selectivities to adsorbed chemical species and their reaction paths.28–30 High selectivities can be achieved by precisely tuning the plasmon resonance and the energy distribution of HEs to align with targeted unoccupied adsorbate states, thereby selectively promoting a specific reaction pathway.6,17,30 The design and engineering of the optoelectronic properties of plasmonic architectures are thus important in particular to achieve selectivity in multiproduct reactions such as CO2 reduction.31
In the context of plasmon-enabled chemical transformations, reaction pathways and activation energies are often being investigated using ground-state density functional theory (DFT) methods.32–35 Although these analyses provide important information on the systems and contribute to the understanding of the action mechanisms, they cannot accurately capture the physics of excited-states and the dynamics of the photogenerated hot carriers. Instead, time-dependent DFT (TDDFT) approaches have been increasingly employed to shed light on plasmon dynamics and hot carrier generation36–38 by providing atomic-scale insights into excitation and transfer processes of electrons. In particular, Rossi et al. have developed a real-time TDDFT methodology to study the dynamics of plasmon-molecule systems,39–43 demonstrating that the generated HEs have an energetic and spatial distribution that depends on the atomic structure, with lower-coordinated atoms exhibiting a higher proportion of HEs.41 These can be directly transferred to adjacent semiconductors40 or molecules,29,42 even when the molecule is not chemisorbed to the plasmonic nanoparticle:42 using Ag–CO as a model system, Fojt et al. demonstrated that HEs can be directly generated on the molecule at distances up to 5 Å.
We extend the approach of Rossi et al. to investigate the energy required to activate carbon dioxide (CO2) on a small Au cluster in the presence of co-adsorbed environmental species and probe the carrier dynamics. It is widely accepted that the reaction environment and intermediate species can steer the reaction pathway44–46 by altering the potential energy landscape of the chemical transformation. However, a mechanistic study of the effect of intermediate adsorbates on HE generation and transfer in CO2 reduction is critical to enhance our understanding of the fundamental processes involved. Here, we focus specifically on the role of adsorbed hydroxyl groups, as they take part in the CO2RR and are crucial for enhanced stability, activity and selectivity.47–49 By using TDDFT calculations, we study the HE transfer process as a function of distance, excitation frequency and an increasingly non-monochromatic frequency distribution, extending the fundamental understanding of HE transfer across nanoparticle–molecule interfaces and their impact on the overall CO2 reduction reaction.
We use gold as a standard plasmonic material because of its unique electronic configuration which allows it to efficiently mediate catalytic reactions.31,54 The electronic configuration of Au is shaped considerably by its atomic orbital arrangement. Gold has a 5d106s1 valence orbital configuration which consists of five filled 5d atomic orbitals that enable hybridization with various reactant molecules, and a partially filled 6s orbital. The five 5d orbitals are strongly lobed and are overlaid by the diffused spherical 6s orbital which does not hybridize with the 5d orbitals. The large nuclear charge of gold leads to a more pronounced nuclear-electron attraction of the valence electron shell: due to relativistic effects, the s-orbitals are found to contract in response to the large nuclear charge, while the d-orbitals are in fact expanded, increasing their involvement in the chemical and physical properties of gold.55,56 These specific atomic orbital lobes allow for various combinations of hybridisation and formation of complexes with molecular species and ligands, making gold a promising material for catalytic applications and HE transfer. It is worth noting that this versatility may pose challenges to spatial selectivity, as gold can couple with numerous molecular species. However, the resulting higher spatial probability of electron transfer due to an increased overlap integral of the atomic and/or molecular orbitals involved promotes catalytic reactions. Selectivity for a specific reaction can be achieved by carefully tuning and aligning the energy distribution of HEs with the energy of the lowest unoccupied molecular orbitals (LUMOs) of the reactant species,28 as discussed at the end of this section.
This is particularly relevant for multibranched chemical transformation like CO2 reduction. Most of the high performing experimental literature on CO2 reduction uses aqueous media that are either near-neutral or slightly alkaline.57–59 While there are recent reports on CO2 reduction under acidic conditions,60,61 neutral and alkaline electrolytes are preferred because they provide a better CO2 activation capacity, improve the suppression of the competing hydrogen evolution reaction and help in further promoting the C−C coupling efficiency.62,63 An example of CO2 reduction to typical products like formiate and ethylene in alkaline media can be represented by the following equations:64,65
CO2 + H2O + 2e− → HCOO− + OH− |
2CO2 + 8H2O + 12e− → C2H4 + 12OH− |
Under these conditions, the competing hydrogen evolution reaction can be drastically suppressed and the generated OH− intermediate can be an active participant in the reaction, speeding up the activation of CO2 and providing a means for further electron transfer.
Fig. 2(a) shows the OCO bond angle when the systems reached equilibrium (forces <0.05 eV per atom). In the absence of the OH group, CO2 maintains a linear symmetry with a final equilibrium OCO angle which fluctuates around 178°, independent of the distance from the Au cluster (red curve). Contrarily, the presence of an OH group perturbs the charge symmetry of the molecule, leading to structural transformation for d < 3 Å. This results in a bent configuration with a final equilibrium OCO angle of 133°, in line with the previous theoretical reports on activated CO2 on catalysts’ surfaces.51,52 Similar results are also obtained on periodic gold slabs (see ESI,† S1). Simultaneously, as CO2 approaches the Au cluster (d < 3 Å), a redistribution of the charge density occurs, as can be seen by the different LUMO shapes of the system (Fig. 2(b)). A Bader charge analysis67,68 was performed to investigate the charge redistribution which induces a charge dipole on the CO2 molecule, with negative charges on the oxygen atoms (Fig. S2, ESI†). This in turn breaks its linear symmetry and results in an increased likelihood of adsorption on the Au cluster. These results suggest the importance of investigating the effects of co-adsorbed hydroxyl groups – and possibly other environmental species – in the overall activation of CO2, as well as the role of such species in HE transfer for efficiently driving catalytic processes.
When CO2 approaches the Au and Au + OH clusters, the strength of orbital hybridization increases.42 This can be demonstrated by analysing the projected density of states (pDOS) of the adsorbed molecules as a function of their distance to the Au surface for the different systems (Fig. 2(c) and (d)). At distances d ≳ 4 Å for both Au + CO2 and Au + OH + CO2 systems, the pDOS converges to the molecular density of states (DOS) of the isolated molecules. As d decreases, the pDOS eventually splits into several branches due to hybridisation with Au orbitals.42 The addition of the OH group qualitatively shows a similar trend with a branched pDOS (Fig. 2(b)), but with an increased number of electronic states. In other words, the OH group mediates the orbital hybridization between Au and CO2, allowing for more accessible states.
We anticipate that these states are of significant importance for the further HE transfer process;31 in fact, a HE transfer to the adsorbed molecule requires the presence of acceptor states at suitable energies, i.e. where the pDOS is present,42 thus having more unoccupied levels which can lead to an increase of catalytic efficiency.
Additionally, this adsorption process is also accompanied by a shift towards a lower binding energy of the LUMO, decreasing from ∼4.9 eV (d ≳ 4 Å) to ∼4.6 eV (d ∼ 3.5 Å) in line with the previous literature,14 eventually splitting up into 4.7 eV (LUMO+1) and 4.5 eV (LUMO) for d < 3 Å due to exchange interactions rising with inverse inter-atomic distance (with the overlap integral of associated orbitals forming a bond). This is another indication that the OH group acts as a “bridge” between CO2 and Au in terms of electronic coupling, which can then enable electron transfer from a considerably larger distance.
The total DOS of the different systems is shown in Fig. S3 (ESI†). The introduction of CO2 and OH induces only minor alterations in the total DOS due to the dominant contribution of states originating from the Au cluster. Notably, in the presence of the molecules, the Au cluster exhibits a slightly positive charge, which becomes more pronounced when the OH group is involved. The shift of the HOMO to a higher energy is ∼0.1 eV for Au + CO2 (red curve) and ∼0.16 eV for Au + CO2 + OH (green curve). This indicates that both the adsorbed OH and the CO2 attract negative charges from the Au nanoparticle, which becomes apparent when comparing electronegativities, ionization energies, and electron affinities of C and O vs. Au.69 Consequently, an electron transfer should occur from the Au NP to the molecular species. The CO2 molecule induces a significantly increased shift of the HOMO to higher binding energy as compared to the shift when the OH group is included in the system. This dominant energy shift due to the CO2 molecule suggests that an electron transfer from the Au cluster will eventually reside with the CO2 molecule rather than with the OH group, the latter presenting merely a transient charge path for transferring an electron to the CO2 molecule.
The photoabsorption spectra (Fig. 3(a)) are characterized by a smoothly growing intensity starting at around 1 eV, with a plasmon peak at ∼2.5 eV, followed by a wide modulation up to 4 eV. The latter is in line with previous works on the optical properties of small gold clusters70,71 and can be ascribed to interband transitions, which have a larger probability and a stronger contribution to the photoabsorption spectra than the plasmon excitation.72 As expected, the plasmon peak is relatively weak, in line with the previous theoretical works on small gold clusters73–75 which showed that a clear plasmon emerges only when the cluster size exceeds 2 nm.76 For the combined systems, we observe a slight red-shift (green and red curves in Fig. 3(a)) of the plasmon peak from 2.66 eV for the single Au cluster, to 2.56 eV and 2.52 eV for Au + CO2 Au + CO2 + OH, respectively. This indicates the presence of additional decay channels for the plasmon due to formation of hybridized cluster-molecule states.
Next, we excite the systems with a Gaussian pulse – E(t) = E0 cos(ωp(t − t0))exp(−σ2(t − t0)2/2) – with ωp set to be in resonance with the systems (ωp = 2.66 eV for Au, 2.56 eV for Au + CO2 and 2.52 eV for Au + CO2 + OH), centred at 10 fs and with a temporal FWHM of 5 fs (Fig. 3(a), purple peak). In accord with the Heisenberg's uncertainty principle —Δt × ΔE ≥ h/2 – a FWHM of Δt = 5 fs corresponds to an uncertainty in the photon energy range of ΔE = 0.41 eV, presenting a broadband excitation as intended for plasmonic excitation with solar irradiation.
The energy of the light pulse is absorbed by the electrons in the system, promoting them into excited states. The electronic energy is not equally distributed, and can be divided into Coulomb energy, and electron–hole transition energy contributions41,77 as shown for the Au + OH + CO2 system in Fig. 3(b). The latter can be further separated into the energy of transitions resonant with the excitation pulse (i.e. with frequency ω = ωp ± 2σ), constituting hot carriers, and non-resonant transitions, attributed to transitions from d-states in the metal nanoparticle which screen the plasmon. The evolution of the different energy contributions is similar for all the investigated systems (Fig. S4, ESI†), as the plasmon dephasing process is not affected on a significant scale by a single molecular species. Initially, the plasmon is excited via Coulomb interactions78 and non-resonant contributions carry most of the energy during the plasmon excitation. After ∼15 fs, as the plasmon decays, the total energy is redistributed into electron−hole excitations that are resonant with the pulse.
Having established that after ∼15 fs the energy of the plasmon is mostly stored in hot carriers, we proceed to analyse the energy distribution of the photogenerated HEs, as well as the fraction of such HEs directly excited to states localised on the CO2 molecule for the Au + CO2 and Au + CO2 + OH systems. The HE energy distributions are shown in Fig. 3(c) and (d), where we have averaged the energies of the HEs between 15 fs and 30 fs as the resonant transitions have already reached their steady state. Therefore, HEs possess one temperature in accord with Fermi–Dirac statistics relative to the energy of their steady state as given by the convolution of the initial HE population with the total DOS of the system in the relevant energy range. For both the analysed systems, the generated HEs (black lines) can have energies up to the laser pulse frequency (EF + ℏωp) due to the conservation of energy. In addition, their energy distributions are not uniform within this range but show occupation probabilities that match the total DOS of the systems; electrons can only be excited to existing unoccupied states. The total DOS for Au + CO2 and Au + CO2 + OH are similar as they are dominated by the Au contributions. It follows that all systems have similar total HE energy distributions, presenting major peaks at ∼0.7 eV, 1.3 eV and 2.2 eV.
Conversely, the transferred electron energy distributions (red lines), which represent the fraction of HEs directly excited to states localised on the CO2, mirror the pDOS and exhibit differences between the systems. In particular, in the absence of the OH group, the fraction of HEs generated on the CO2 is 0.72%, with most of them having an energy of 1.4 eV. The addition of the OH group increases the density of electronic states (see also Fig. 2(d)), thus opening more channels for electron transfer and effectively improving the charge transfer to 0.81%, which corresponds to an 11% increase with respect to the case without OH.
In the next section, we investigate the effect of the excitation parameters – pulse frequency (ωp) and width (FWHM)– on the direct excitation of HEs to CO2 orbitals. The pulses are visualised in the time domain as shown in Fig. S5 (ESI†) and have varying ωp from 1.6 eV to 2.8 eV, and FWHM from 4 fs (ΔE = 0.52 eV) to 15 fs (ΔE = 0.14 eV). The energy range was chosen to investigate the HE generated from the plasmon excitation as well as from interband excitation, noting that the threshold energy for interband transition (5d to 6sp) for gold is about 2.3eV.79,80 We have also investigated a pulse at 3.75 eV with a FWHM of 5 fs to match the maximum of the interband transitions within the analysed region (see Fig. 3(a)). The energy distributions of the HEs excited to states localised on the CO2 molecule are reported in Fig. 4(a)–(d) as a function of pulse energy; the distributions for the total amount of HEs in both systems are given in Fig. S6 (ESI†). The amount of generated HEs increases with the increase of pulse width. For FWHM = 4 fs, we obtain a maximum HE density when ωp ∼ 2.8 eV, while for FWHM = 15 fs, the maximum occurs when 2.3 < ωp < 2.7 eV for all systems. In this energy range, the pulse excitation approaches the plasmon resonance of the systems (Fig. 3(a)), thus emphasizing the critical role of spectral overlap in efficiently modulating electron transfer processes.81,82 Furthermore, below ∼2 eV, photoabsorption decreases, thus resulting in a negligible generation of HEs within the molecule.
At energies above the plasmon resonance, hot electrons are being generated via interband transitions.72 While the total amount of HEs the systems is higher at the interband transitions (because of the larger photoabsorption72,80), the fraction of those HEs transferred to the CO2 molecule is slightly smaller than at the plasmon resonance (Fig. S7, ESI†). This suggests that using the interband transition to activate and subsequentially reduce CO2 has a little advantage over the plasmon absorption in this specific system. In addition, exciting such transitions would come at the cost of a narrow excitation range and in-phase oscillation, preventing practical applications: using a laser to excite such interband transitions would preclude any use of sustainable energy such as solar irradiation for CO2 reduction. This finding suggests that engineering the photoabsorption, specifically the plasmon resonance energy, should be considered to efficiently leverage photogenerated HEs for tailored reactions.
In the absence of the OH group (Fig. 4(a) and (c)), the energy distribution of HEs exhibits a prominent single peak centred around ∼1.4 eV for pulse energies of 2.4–2.6 eV. Notably, approximately 55% (75%) of the HEs assume this specific energy level when subjected to pulse durations with the FWHM of 4 fs (15 fs) and under resonance conditions. Conversely, the presence of the OH group results in a broader electron energy distribution. This is attributed to the presence of more accessible hybridized states within the energy range of 0–2 eV, which can be populated by HEs. The broadened energy distribution as facilitated by the OH group provides more channels for HEs transfer and promotes the system to a different excited level, potentially leading to a different product distribution.6 This demonstrates that the presence of the OH group in the CO2 photoreduction process alters the energy landscape and transfer behaviour of HEs, thereby possibly affecting the reaction pathway, and highlight the importance of taking into account the influence of environmental and intermediate species for selective HE catalysis.
Furthermore, the excitation width also affects the HE distributions. Narrow band pulses (FWHM = 15 fs; ΔE = 0.14 eV) lead to an overall increase in the generation of HEs on the molecule; conversely, with ‘broadband’ excitation (FWHM = 4 fs; ΔE = 0.52 eV), the pulse energy is redistributed to a wider range of possible transitions in the photoabsorption spectrum, leading to a broader but less intense (less resonant) electron transfer. The transfer probability is given in Fig. 3(f) and 4, calculated as the ratio of the number of HEs generated on the molecule to the total HEs in the systems, and exhibits consistently higher values when the OH group is present, indicating a more efficient transfer. In particular, the addition of the OH group leads to an increase of ∼10 to 15% in the transfer probability, depending on pulse frequencies and FWHMs. Interestingly, when transitioning from the narrowband to broadband excitation (FWHM = 0.14 eV to 0.52 eV), despite a reduced transfer probability, the electron transfer to acceptor hybridized states remains high, with a maximum probability of ca. 0.84% for Au + CO2 + OH at ωp = 2.3 eV. This result suggests that HE transfer can still occur under broadband solar illumination with minor reductions of the yield, which is critical for the practical operation of photocatalysts.
While it is beyond the scope of this work to delve into the quantitative details of Landau damping, it is important to acknowledge the potential contribution of Landau damping from plasmons generated in gold (Au). Plasmons are collective longitudinal electron density waves which align electrons at their wave front to the resonant energy and k-vector of the plasmon wave, thereby providing energy and momentum to electrons below the resonant energy or depleting energy and momentum from electrons with energies above the resonant energy and k-vector.83 Such a resonant HE alignment, in the compound with the adsorbed OH group enabling the HE transfer to CO2 species, may present a resonant charge pump system as briefly outlined below and illustrated schematically in Fig. 5. We note that Au is excellent for plasmon propagation along its cluster surface in an arbitrary direction due to its wide-angle coverage of surface states originating from its hybrid-AO configuration (Fig. 1(b)). With the plasmon wavefront increasing the HE density at the Au atom with an adsorbed OH group, HEs get pushed into OH groups where they get weakly localized, mainly at the outermost tip (towards positively charged H atom). Further advancement of the plasmon wavefront will result in the crest of the HE density wave, providing a dynamic Coulomb force to the HE localized at the end of the OH group, likely facilitating the HE transfer from the OH group to the CO2 molecule, and providing the dynamic energy to overcome the weak localization at the OH group. With the passing of the HE density wave, its back end will dynamically deepen the electron localization potential of the OH group, reaching maximum localization ability at the density minimum of the plasmon. This ability sets the best possible condition to localize another HE in the next oscillation cycle, thereby repeating the HE transfer process.
In addition to the resonant HE transfer in the energy spectrum discussed earlier, the charge pump process described above may provide an additional resonance on the time spectrum. While it is beyond the scope of our work to delve into the quantitative details of such a Landau damping-mediated HE pump in the time regime, we point out that the dynamic electric dipole moment of the OH group as the adsorbed species may play a prominent role in further enhancing the HE charge transfer to the CO2 molecule. Furthermore, the Landau damping-mediated resonance will likely have an impact on the selectivity of chemical species to receive the HE, thereby being reduced to a specific hydrocarbon or hydro-oxycarbon compound. With the CO2 molecule and H2 or H2O present as reactants, the testing of analogous adsorbed species to OH groups such as –O–Ag or –O–Li as stable adsorbents with suitable ionization energy and electron affinity of the cation (Ag, Li) provides a clear direction for future research into the ongoing optimization of adsorbent- and plasmon-mediated catalytic reduction of CO2.
This work contributes to the development of a mechanistic and kinetic picture of illuminated nanoparticle systems, which has led to active debate on the role of hot carriers in observed reaction rates.84–87 We note that the quantitative results are specific for the systems considered. However, the fundamental physics and general conclusions elucidated here remain translatable to other systems and co-adsorbed species, as recently shown for electron transfer from Ag and Cu clusters to CO molecules.42 We have studied both CO and CO2 as co-adsorbed species (Fig. S8, ESI†) and performed ground state calculations to investigate the hybridization between the Au cluster and the molecules. However, these species do not appear to hybridize – and thus promoting resonant charge transfer to CO2 molecules – to the same extent as adsorbed OH groups. Importantly, our findings highlight the critical role of OH adsorbates in determining (i) the adsorption and activation of CO2, (ii) metal–molecule hybridization, (iii) importance of matching energy levels to efficiently transfer hot electrons to hybridized states. Consequently, the presence of OH species can promote the CO2 reduction reaction to a different potential energy surface, possibly leading to different product distributions and reaction speeds. It is, therefore, very important to consider adsorbed species during the design of plasmonic catalysts to achieve high efficiency and selectivity for specific reactions, particularly when dealing with plasmonic structures functionalized with ligands.
By applying TDDFT, we are able to study the carrier dynamics of these systems at an atomic level, whereby the quantification of the hot electron (HE) energy distribution is critical. While the total HE distribution is largely unaffected by the presence of the OH group, the additional hybridized states facilitate the transfer of HEs to the CO2 molecule, thereby increasing the resonant direct HE transfer by 11%. Furthermore, our findings confirm the importance of spectral overlap between the excitation energy and the plasmon resonance, and show that direct HE transfer is only slightly decreased (∼1.05% to 0.84%) when the excitation is changed from a narrowband to a broadband. This finding shows that a significant chemical reaction rate still occurs under broadband excitation such as solar light. In addition, Landau dampening of the plasmon wave in the compound with the OH group may present another resonance mechanism on the time scale. This mechanism may further enhance HE transfer to CO2 for specific reductive reactions, whereby the dynamic dipole moment of the OH group coupling the plasmon to a CO2 molecule via HE transfer is a key property.
In summary, this investigation elucidates the role of adsorbed hydroxyl groups in the adsorption and activation of CO2 on plasmonic surfaces. It highlights the importance of considering adsorbed molecules to enhance direct HE transfer, ultimately enabling the design of highly efficient and selective plasmonic photocatalysts with polychromatic excitation.
Footnote |
† Electronic supplementary information (ESI) available. See DOI: https://doi.org/10.1039/d4nh00046c |
This journal is © The Royal Society of Chemistry 2024 |