光电阴极
太阳能电池
光电流
制氢
分解水
光电化学电池
光伏
材料科学
纳米技术
析氧
氢
光电子学
电极
光伏系统
化学
电化学
电气工程
物理
工程类
光催化
有机化学
物理化学
电解质
生物化学
量子力学
催化作用
电子
作者
Minseo Lee,Jun Kim,Jeehye Kim,Youn Jeong Jang,Jin Young Kim
标识
DOI:10.1021/acsaelm.4c01817
摘要
Solar-driven water splitting is achieved by connecting photovoltaics with electrolysis. Recently, integrated approaches of the two configurations for photoelectrochemical reactions have shown great potential in a combined unit, but strategies to address further material and cell development face significant scientific challenges. Here we present an experimental demonstration of photoelectrochemical (PEC) unit-cells with efficient separate dual compartments for oxygen evolution and hydrogen evolution reactions. The design and fabrication of cell architectures with various degrees of integration are investigated efficient and sustainable PEC processes. The effect of the nanostructured silicon (Si) photoelectrodes, including the adoption of layer architectures, surface protection layer deposition, and membrane electrode assembly is further studied to optimize the design parameters of the PEC unit-cells. This developed PEC cell with the Si photocathode achieved a photocurrent density of −4.8 mA cm–2 at −2.0 Vcell and −2.87 mA cm–2 at −1.6 Vcell. It clearly provides a critical milestone for unbiased solar water splitting. Practical solar to hydrogen (STH) can be directly estimated in investigating PEC performance in this unit-cell as assembled with a solar cell. It is a significantly meaningful step forward in practical solar fuel production.
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