覆盖层
原位
材料科学
光催化
化学工程
化学
纳米技术
催化作用
物理化学
生物化学
工程类
有机化学
作者
Milana Rudak,Hamza Saleem,Yiseul Park,Yiseul Park
标识
DOI:10.1021/acsaem.5c01059
摘要
Cuprous oxide (Cu 2 O) is a promising p-type semiconductor material for solar energy conversion due to its earth-abundant nature and suitable bandgap (2 eV), corresponding to a theoretical photocurrent density of 14.7 mA cm –2 upon integration of AM 1.5 illumination. However, its practical utilization is significantly hindered by severe photocorrosion and poor charge carrier dynamics. In this study, we demonstrate the activation of Cu 2 O photoelectrodes through applied bias and solar irradiation, leading to the formation of a Cu 2 O/CuO heterojunction (a-Cu 2 O) that enhances charge separation and improves PEC performance. The a-Cu 2 O photoelectrode exhibited anodic photocurrent generation under light irradiation, along with an anodic shift in the hydrogen evolution reaction (HER) onset potential by 200 mV. Using this n-type behavior, an iron oxyhydroxide (FeOOH) overlayer was deposited by photodeposition technique onto the a-Cu 2 O surface to further enhance the stability of a-Cu 2 O, forming the a-Cu 2 O/FeOOH photoelectrode. FeOOH functioned both as a cocatalyst and a protective layer, effectively inhibiting the self-reduction and self-oxidation of Cu + species. Structural and surface analyses using X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), and scanning electron microscopy (SEM) confirmed the formation of the Cu 2 O/CuO heterojunction and successful FeOOH deposition. Linear sweep voltammetry (LSV) and chronoamperometry measurements demonstrated significantly improved photocurrent stability and performance in the a-Cu 2 O/FeOOH photoelectrode, showing a 2-fold increase in photocurrent density at +0.5 V vs RHE compared to the bare Cu 2 O electrode. This study presents a simple yet effective approach for improving both the PEC activity and stability of Cu 2 O-based photoelectrodes through in situ activation and photodeposition techniques. The findings offer valuable insights into heterojunction engineering and protective layer strategies, contributing to the development of more efficient and durable Cu 2 O-based photocathodes for solar-driven water splitting and other PEC applications.
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