分解水
光电化学电池
纳米技术
太阳能转换
材料科学
光电化学
制氢
太阳能
能量转换
能量转换效率
计算机科学
氢
光电子学
电气工程
化学
光催化
电化学
催化作用
工程类
电极
物理
有机化学
物理化学
热力学
电解质
生物化学
作者
Siliu Lyu,Muhammad Adnan Younis,Zhibin Liu,Libin Zeng,Xianyun Peng,Bin Yang,Zhongjian Li,Lecheng Lei,Yang Hou
标识
DOI:10.1007/s11705-022-2148-0
摘要
As an eco-friendly, efficient, and low-cost technique, photoelectrochemical water splitting has attracted growing interest in the production of clean and sustainable hydrogen by the conversion of abundant solar energy. In the photoelectrochemical system, the photoelectrode plays a vital role in absorbing the energy of sunlight to trigger the water splitting process and the overall efficiency depends largely on the integration and design of photoelectrochemical devices. In recent years, the optimization of photoelectrodes and photoelectrochemical devices to achieve highly efficient hydrogen production has been extensively investigated. In this paper, a concise review of recent advances in the modification of nanostructured photoelectrodes and the design of photoelectrochemical devices is presented. Meanwhile, the general principles of structural and morphological factors in altering the photoelectrochemical performance of photoelectrodes are discussed. Furthermore, the performance indicators and first principles to describe the behaviors of charge carriers are analyzed, which will be of profound guiding significance to increasing the overall efficiency of the photoelectrochemical water splitting system. Finally, current challenges and prospects for an in-depth understanding of reaction mechanisms using advanced characterization technologies and potential strategies for developing novel photoelectrodes and advanced photoelectrochemical water splitting devices are demonstrated.
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