Yosuke
Kageshima
a,
Tsutomu
Minegishi
ab,
Yosuke
Goto‡
a,
Hiroyuki
Kaneko
a and
Kazunari
Domen
*a
aDepartment of Chemical System Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan. E-mail: domen@chemsys.t.u-tokyo.ac.jp
bJapan Science and Technology Agency/Precursory Research for Embryonic Science and Technology (JST/PRESTO), 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan
First published on 20th April 2018
A particulate solid solution, (ZnSe)0.85(CuIn0.7Ga0.3Se2)0.15, was synthesized by the flux method using various amounts of a Cu precursor (to make Cu-deficient, stoichiometric, or Cu-excess specimens) and/or a Na2S additive, to assess the effects of synthesis conditions on photoelectrochemical (PEC) properties. A stoichiometric (ZnSe)0.85(CuIn0.7Ga0.3Se2)0.15 photocathode prepared with Na2S produced a cathodic photocurrent in a neutral aqueous electrolyte approximately 2.3 times greater than that obtained from a sample made without Na2S. Elemental analyses by inductively coupled plasma mass spectrometry and X-ray photoelectron spectroscopy demonstrated that the presence of Na2S facilitated the incorporation of Li from the flux into the solid solution, in addition to the insertion of O atoms at Se vacancies, during the synthesis. Consequently, a (ZnSe)0.85(CuIn0.7Ga0.3Se2)0.15 photocathode with appropriate surface modification and back contact demonstrated an onset potential for cathodic photocurrent as high as 0.77 VRHE, a −5.2 mA cm−2 of photocurrent at 0 VRHE and a half-cell solar-to-hydrogen conversion efficiency of 1.1% at 0.37 VRHE. The present study provides new insights into techniques for the preparation of particulate Cu-chalcogenide photocathodes for efficient hydrogen evolution.
Recently, we demonstrated novel polycrystalline thin-film photocathodes made from a solid solution of ZnSe and CIGS ((ZnSe)0.85(CIGS)0.15) that showed the beneficial features of both II–VI compounds and Cu-chalcopyrite, as noted above.6 A (ZnSe)0.85(CIGS)0.15 photocathode prepared using a bilayer method exhibited a long absorption edge up to 900 nm and significant cathodic photocurrents as high as −12 and −4.9 mA cm−2 at 0 and 0.6 VRHE, respectively, as well as a positive onset potential of approximately 0.9 VRHE under simulated sunlight.6b As a consequence of the high cathodic photocurrent of the (ZnSe)0.85(CIGS)0.15 photocathode at positive potentials, a PEC cell consisting of this photocathode in conjunction with a BiVO4 photoanode7 successfully demonstrated overall water splitting with a solar-to-hydrogen (STH) conversion efficiency up to 1.0% without any external bias voltage.8 The suitable onset potential of the (ZnSe)0.85(CIGS)0.15-based photocathode is attributed to a positive shift of the valence band maximum (VBM) relative to the shallow VBM of other CIGS-based materials that result from the presence of Cu 3d orbitals.5a,9 It is probable that the VBM shift is triggered by the reduced Cu content in the former, resulting in a lesser contribution of Cu 3d orbitals to the formation of the valence band. In addition, we more recently reported that a (ZnSe)0.85(CIGS)0.15 photocathode can also be prepared from powdered materials (synthesized by a flux technique in a sealed quartz ampoule) via the particle transfer (PT) method.10 The fabrication of photoelectrodes from powders has the potential to be economically feasible upon scale-up in the future, especially in comparison with polycrystalline units prepared under non-equilibrium conditions using vacuum co-evaporation. The possibility of fabricating integrated photoelectrodes on the microscopic scale, such as in the form of photocatalyst sheets, is another advantage of particulate photoelectrodes.11 A particulate (ZnSe)0.85(CIGS)0.15 photocathode modified with sulphide layers composed of ZnS and CdS and a Pt catalyst generated a relatively large photocurrent of −4.3 mA cm−2 at 0 VRHE and an onset potential of 0.8 VRHE under simulated sunlight, even though it was prepared from powders.10 In addition, a PEC cell fabricated from a particulate (ZnSe)0.85(CIGS)0.15-based photocathode and a BiVO4 photoanode was found to be capable of driving overall water splitting under simulated sunlight with a 0.60% STH.10
In the past, both polycrystalline and particulate (ZnSe)0.85(CIGS)0.15 synthesized using an excess of Cu have been investigated as photocathodes.6,10 It is still unclear why an excess of Cu assists in producing active (ZnSe)0.85(CIGS)0.15 photocathodes, and the origin of the p-type semiconducting properties of this material is also unclear. Thus, additional information concerning the effects of the amount of Cu on the PEC properties of (ZnSe)0.85(CIGS)0.15 could be quite important to future material design research, as well as the development of more efficient photocathodes. In addition, it has been established that the introduction of alkali metal species enhances the photovoltaic performance of CIGS-based materials.12 However, there have been no reports concerning the effects of alkali metal species on the PEC properties of Cu-chalcogenides. In the case of a previously reported polycrystalline thin-film (ZnSe)0.85(CIGS)0.15 photocathode prepared by the vacuum co-evaporation method, Na species could be incorporated from the soda-lime glass substrate, as has also been observed in conventional CIGS thin-film solar cells. Even so, Na doping into particulate (ZnSe)0.85(CIGS)0.15 has not yet been examined. This could represent one possible reason for the limited efficiencies of particulate (ZnSe)0.85(CIGS)0.15-based photocathodes compared to polycrystalline thin films, although the lack of detailed studies of synthesis conditions makes it difficult to draw conclusions.
In the present study, the synthesis conditions applied in the fabrication of (ZnSe)0.85(CIGS)0.15 particles were carefully investigated to examine the relationship between the particle composition and PEC performance. Particulate (ZnSe)0.85(CIGS)0.15 was initially synthesized by a flux method using various amounts of a Cu precursor (producing either Cu-deficient, stoichiometric, or Cu-excess materials), to clarify the effects of the amount of Cu on the p-type semiconducting properties and PEC performances of the resulting solid solution. In addition, Na doping into the (ZnSe)0.85(CIGS)0.15 particles was also examined, using Na2S as the additive. These strategies were found to be effective at enhancing the PEC performances of the particulate photocathodes. As a result, this work provides new insights into the design of particulate Cu-chalcogenide photocathodes for efficient hydrogen evolution.
Prior to the following surface modifications, the electrode surface was etched with an aqueous solution containing 0.1 M KCN and 0.8 M KOH for 1 min, followed by rinsing with distilled water. The photocathode was then modified with a CdS and/or ZnS layer via chemical bath deposition (CBD), employing a previously reported procedure.10 CBD was performed with 50 mL of an aqueous solution containing 25 mM Cd(CH3COO)2, 0.375 M SC(NH2)2 and 14 wt% ammonia as precursors. During the deposition period of 14 min, the beaker containing the precursors and photocathode was immersed in a water bath held at 60 °C, resulting in a gradual increase in the temperature of the reaction mixture to approximately 53 °C. The ZnS layer was then applied in the same manner but using Zn(CH3COO)2 as the precursor instead of Cd(CH3COO)2. Following these CBD processes, each specimen was annealed at 200 °C for 1 h in air. A Pt catalyst for the hydrogen evolution reaction was subsequently deposited on the photocathode by photo-electrodeposition using a three-electrode system in an aqueous electrolyte containing 10 μM H2PtCl6, 100 μM NaOH and 0.1 M Na2SO4. A solar simulator generating AM 1.5G radiation at 100 mW cm−2 was used as a light source. During the photo-electrodeposition of Pt particles, a constant potential of −0.3 V versus Ag/AgCl (VAg/AgCl) was applied to the photocathode. It should be noted that irradiation with simulated sunlight was maintained until the photocurrent plateaued (approximately 1 h). The photocathodes produced in this manner are hereafter referred to as Pt/(ZnS/)CdS/(ZnSe)0.85(CIGS)0.15/M/Ti (M = Mo, C or Mo/C).
Fig. 1 (a) XRD patterns and (b) DR spectra for 20–40% Cu-excess, stoichiometric, and 5–10% Cu-deficient (ZnSe)0.85(CIGS)0.15 particles synthesized by the flux method. |
Fig. 2 SEM images of (a) 10% Cu-deficient, (b) 5% Cu-deficient, (c) stoichiometric, (d) 20% Cu-excess, and (e) 40% Cu-excess (ZnSe)0.85(CIGS)0.15 particles. Scale: 5 μm. |
The PEC performances of particulate photocathodes consisting of (ZnSe)0.85(CIGS)0.15 synthesized with various amounts of the Cu precursor and having the structure of Pt/CdS/(ZnSe)0.85(CIGS)0.15/Mo/Ti were evaluated in a neutral buffer solution under simulated sunlight (Fig. 3). Each solid solution showed an obvious cathodic photoresponse at negative potentials, even in the case of the Cu-deficient material. The (ZnSe)0.85(CIGS)0.15 synthesized with a 40% Cu excess (equivalent to the conventional approach) exhibited the best PEC performance, with a 0.65 VRHE onset potential and a −2.4 mA cm−2 photocurrent at 0 VRHE. In contrast, the photocurrents generated by the photocathodes prepared using a reduced amount of Cu gradually deteriorated compared to the above values as the Cu loading was decreased. In particular, the Cu-deficient samples produced very low cathodic photocurrents at negative potentials in conjunction with an obvious anodic photoresponse at positive potentials (Fig. 3b). These results were obtained despite the favourable optical properties and clear crystalline facets of the Cu-deficient materials. It is well-known that conventional CIGS-based materials synthesized under the Cu-deficient condition typically exhibit superior photovoltaic or PEC performances, because their p-type semiconducting properties originate from Cu vacancies.12b The anodic photoresponse observed in the present study implies that these materials possessed n-type semiconducting properties to a certain extent. In this research, the Zn2+ ions substituted at Cu+ sites would be expected to function as donors. However, an excess of the Cu precursor in the conventional synthesis method would prevent the formation of ZnCu anti-sites, resulting in active photocathodes. In addition, the smaller particle sizes of the Cu-deficient solid solutions could also be considered as one possible cause for the reduced PEC performances.
Fig. 4 DR spectra acquired from stoichiometric or 40% Cu-excess (ZnSe)0.85(CIGS)0.15 particles synthesized with and without Na2S at Na/Cu (or Na/(In + Ga)) = 0.2. |
Fig. 5 SEM images of (a) stoichiometric and (b) 40% Cu-excess (ZnSe)0.85(CIGS)0.15 particles synthesized with Na2S. Scale: 5 μm. |
The Na2S significantly improved the cathodic photocurrent but did not affect the onset potential, as can be seen in the current–potential curves in Fig. 6. The cathodic photocurrent generated by the 40% Cu-excess (ZnSe)0.85(CIGS)0.15 photocathode was enhanced by a factor of approximately 1.8 by Na2S addition (from −2.4 to −4.2 mA cm−2 at 0 VRHE), while that of the stoichiometric (ZnSe)0.85(CIGS)0.15 photocathode was increased by a factor of 2.3 (from −1.7 to −3.9 mA cm−2 at 0 VRHE). The relatively large particles with clear crystal facets in the SEM images (Fig. 5) are consistent with the significantly enhanced PEC performances of the (ZnSe)0.85(CIGS)0.15 samples synthesized with Na2S. As described in the ESI,† with increase in the amount of Na2S, the cathodic photocurrent was initially drastically improved but then gradually decreased with further increase in the quantity of the additive. As a result, the highest photocurrent was obtained at a Na/Cu (or Na/(In + Ga)) ratio of 0.2. It is particularly important that, although the photocurrent generated by the stoichiometric (ZnSe)0.85(CIGS)0.15 photocathode was approximately 30% lower than that produced by the 40% Cu-excess specimen when each was made without Na2S, both the stoichiometric and Cu-excess (ZnSe)0.85(CIGS)0.15 synthesized with Na2S showed similar photocurrents (up to approximately −4 mA cm−2 at 0 VRHE). Therefore, it can be concluded that the use of Na2S improved the cathodic photocurrent either with an excess or a stoichiometric amount of Cu, despite the coexistence of Zn species, which is capable of acting as donors.
To reveal the effects of the stoichiometry of the precursor and of adding Na2S to the precursor on the elemental composition of the (ZnSe)0.85(CIGS)0.15 particles, ICP-MS analysis was conducted. As shown in Fig. 7a, the amount of Cu in the resulting samples increased with the amount of Cu species in the precursors under stoichiometric and Cu-excessive synthesis conditions. The Cu-deficient synthesis conditions resulted in increase in the amounts of Zn and Li. This occurred as a result of the formation of ZnCu anti-sites and LiCu. As noted above, ZnCu anti-sites can act as donors. However, the (ZnSe)0.85(CIGS)0.15 functioned as a photocathode material, suggesting that the LiZn in this solid solution could work as acceptors that compensate for the presence of donors. The radii of the Zn2+, Cu+ and Li+ ions are 74, 74 and 73 pm, respectively, so these ions readily substitute for one another.17 The Li concentration in the solid solution reached 0.18% at a Cu/(In + Ga) ratio of 0.9. In contrast, K+ has a much larger ionic radius of 151 pm, so that the extent of K substitution was negligible.17 The compositions of samples synthesized with stoichiometric amounts of the precursors and differing quantities of Na2S are summarized in Fig. 7b. In keeping with the data in Fig. 7a, Na was not detected in these materials despite the use of Na2S, possibly due to its large ionic radius (113 pm) in a four-coordinated state.17 Instead, the Na2S greatly facilitated the incorporation of Li, while the levels of Zn, Cu, In and Ga were almost constant. Using a very large quantity of Na2S (Na/Cu = 1), approximately 5.3% Li was incorporated into the solid solution and the Zn content was decreased from approximately 72.1% (with no Na2S addition) to 67.8%, while the Cu content slightly decreased, from 12.8% to 11.9%. These results imply that a large proportion of the Li was introduced at the Zn sites. Although the details of the local structures are still unclear, Li ions at Zn sites could function as acceptors, whereas Li ions at Cu sites would be expected to prevent the formation of Zn anti-sites.
In addition, XPS analyses revealed that the O/Se ratio in the photocatalyst particles gradually increased according to the amount of Na2S added, while the Se/Cu ratio remained constant (Fig. 8). It should be noted that these elemental ratios are based on the peak areas in XPS spectra. This was done because the surfaces of the present particulate photocathodes possessed micron-order roughness, whereas the escape depth of photoelectrons is on the order of nm, such that quantitative evaluations of the actual elemental compositions in the overall bulk particles is difficult. It has been reported that Na species exhibit catalytic effects for the surface oxidation of semiconductors, related to the passivation of Se vacancies in the CIGS.18 The present XPS observations imply that the Na2S might promote the insertion of O atoms into Se vacancies during the growth of the material. In addition, it is also possible that the Li incorporated into the particulate solid solutions by the use of the Na2S may have similar effects to Na species with regard to promoting oxidation.18 Considering the ICP-MS and XPS data, it is evident that the Na2S increases the incorporation of Li from the flux into the solid solution, accompanied by the introduction of O atoms at Se vacancies.
Current–potential curves obtained from a particulate photocathode with various back contacts, Pt/CdS/(ZnSe)0.85(CIGS)0.15/M/Ti: M = Mo, C, and with a Mo/C bilayer, are presented in Fig. 9. The stoichiometric (ZnSe)0.85(CIGS)0.15 synthesized with Na2S was employed in these trials. As a result of a detailed optimization of the thickness of the C contact layer (see the ESI†), a particulate (ZnSe)0.85(CIGS)0.15 photocathode with a nominally 6.5 nm thick C contact layer exhibited a positive onset potential as high as 0.8 VRHE as well as a photocurrent comparable to that obtained with a Mo back contact (−3.6 mA cm−2 at 0 VRHE). The C layer formed by sputtering deposition was quite fragile, and an overly thick C contact layer resulted in a loss of photocatalytic particles or interruption of the in-plane electrical conductivity. In contrast, in the case of an overly thin C contact layer, (ZnSe)0.85(CIGS)0.15 particles were in partial contact with the Ti conductor layer, thus forming a partial Schottky contact and suppressing the photocurrent, as discussed in the ESI.† Thus, an appropriate C layer thickness must balance an enhanced onset potential and photocurrent. In order to further improve the cathodic photocurrent, a thin (nominally 15 nm) Mo layer was inserted between the (ZnSe)0.85(CIGS)0.15 particles and the C contact layer. The particulate (ZnSe)0.85(CIGS)0.15 photocathode with a Mo/C bilayer contact showed similar and slightly larger cathodic photocurrents at 0 VRHE and at positive potentials, respectively, compared to the samples with solely Mo or C monolayer contacts. Remarkably, a Pt/CdS/(ZnSe)0.85(CIGS)0.15/Mo/C/Ti photocathode exhibited the highest cathodic photocurrent over the potential range of 0.3–0.85 VRHE among the examined photocathodes. We suggest that the incorporation of a small amount of Mo between the (ZnSe)0.85(CIGS)0.15 particles and the C contact layer leads to superior ohmic contact at the semiconductor–contact layer interface.19
It has also been reported that sulphide overlayers composed of ZnS and CdS further enhance the cathodic photocurrent due to the increased thickness of the depletion layer at the solid–liquid interface and the promotion of charge separation.10 Thus, surface modification with a ZnS/CdS bilayer was also applied to the present particulate photocathode made from stoichiometric (ZnSe)0.85(CIGS)0.15 synthesized with Na2S. The Pt and ZnS/CdS-modified photocathode generated a far higher cathodic photocurrent than a Pt/CdS-modified specimen, with a value as high as −5.2 mA cm−2 at 0 VRHE. The onset potential also remained comparable to that of a Pt/CdS-modified cathode (Fig. 10a). The faradaic efficiency during PEC hydrogen evolution was confirmed to be almost 100% based on analyses via gas chromatography (see the ESI†). The half-cell solar-to-hydrogen (HC-STH) conversion efficiency of the Pt/ZnS/CdS-modified photocathode was as high as 1.1% at 0.37 VRHE, while that of the Pt/CdS-modified sample was 0.70% at 0.38 VRHE, as shown in Fig. 10b. The wavelength dependence of the incident-photon-to-current conversion efficiency (IPCE) of the Pt/ZnS/CdS-modified photocathode, as measured at 0 VRHE (Fig. 10c), demonstrates the onset of a cathodic photocurrent in the vicinity of 800 nm. This onset in the IPCE spectrum is in good agreement with the absorption edge of the present (ZnSe)0.85(CIGS)0.15 particles, indicating that the PEC hydrogen evolution was triggered by the band gap photoexcitation of the (ZnSe)0.85(CIGS)0.15 and that the weak light absorption of this material at longer wavelengths than the absorption edge did not contribute to the PEC reaction. The IPCE became greater than 25% in the shorter wavelength region (below 560 nm) and reached 34% at 360 nm. These PEC characteristics are certainly among the highest values ever observed among this type of particulate photocathode. Therefore, it is apparent that the techniques proposed in this study, including the utilization of Na2S and improving the electrode surface and backside structure, are viable means of obtaining an efficient Cu-chalcogenide photocathode for sunlight-driven hydrogen production.
Footnotes |
† Electronic supplementary information (ESI) available: SEM images, XRD patterns, DR spectra and XPS data for various specimens, optimized sample preparation conditions, results of analysis of photoelectrochemical reaction products. See DOI: 10.1039/c8se00101d |
‡ Present address: Department of Physics, Tokyo Metropolitan University, Hachioji, Tokyo 192-0397 (Japan). |
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