WO3/CuWO4 Ratio Controls Open-Circuit Photovoltage and Photocurrent in Type II Heterojunction Solar Fuel Photoelectrodes

光电流 异质结 开路电压 材料科学 光电子学 光伏系统 电气工程 电压 工程类
作者
Lucas Caniati Escaliante,Nilton Francelosi Azevedo Neto,Hervin Errol Mendoza,Chengcan Xiao,Rita A. Kandel,José Humberto Dias da Silva,Frank E. Osterloh
出处
期刊:ACS applied energy materials [American Chemical Society]
卷期号:8 (5): 3198-3208 被引量:5
标识
DOI:10.1021/acsaem.5c00160
摘要

WO3/CuWO4 photoelectrodes for the oxygen evolution reaction benefit from a type II heterojunction for charge separation. However, the impact of the WO3/CuWO4 ratio on the photocurrent and the photovoltage is not clear. To probe the effect of composition, CuxW1–xOy thin films with variable W:Cu ratios were prepared on FTO by reactive magnetron cosputtering of W and Cu, followed by air annealing at 500 °C. EDS, XRD, Rietveld refinement, and Raman spectroscopy confirm the presence of crystalline WO3 and CuWO4 in the W-rich films and increasing amounts of amorphous copper oxides in the Cu-rich films. Band gaps were determined by optical absorption spectroscopy, surface photovoltage spectroscopy (SPS), and photoaction spectra. Optical band gaps are found to decrease from 2.7 to 1.2 eV with increasing copper oxide content. SPS reveals n-type semiconductor photoanode behavior for WO3/CuWO4 samples and p-type photocathode behavior for CuOx-rich films. Photoelectrochemical experiments confirm stable water oxidation with Faraday efficiency near unity for all W-rich films and photocurrents that are increasing with CuWO4 content. Optimal performance is seen for WO3/CuWO4 mixed phases containing 47–75 mass% CuWO4. These compositions maximize charge separation at the type II heterojunction interface between the two materials. Additionally, according to incident photon-to-current efficiency (IPCE) data, WO3 improves photon conversion below 350 nm, while CuWO4 improves conversion at 450–525 nm. Overall, this work shows for the first time how the WO3/CuWO4 ratio controls the photovoltage and the photocurrent in type II heterojunction solar fuel photoelectrodes and how copper oxides in the copper-rich films severely degrade the performance. These results are useful in the context of bulk-heterojunction electrodes for the conversion of solar energy into fuels.
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