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通用且稳健的光热加热驱动高效光电化学水分解

General and Robust Photothermal-Heating-Enabled High-Efficiency Photoelectrochemical Water Splitting.

作者信息

He Bing, Jia Songru, Zhao Mingyang, Wang Yang, Chen Tao, Zhao Shiqiang, Li Zhen, Lin Zhiqun, Zhao Yanli, Liu Xueqin

机构信息

Engineering Research Center of Nano-Geomaterials of Ministry of Education, Faculty of Materials Science and Chemistry, China University of Geosciences, Wuhan, 430074, P. R. China.

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

出版信息

Adv Mater. 2021 Apr;33(16):e2004406. doi: 10.1002/adma.202004406. Epub 2021 Mar 18.

Abstract

The ability of photoanodes to simultaneously tailor light absorption, charge separation, and water oxidation processes represents an important endeavor toward highly efficient photoelectrochemical (PEC) water splitting. Here, a robust strategy is reported to render markedly improved PEC water splitting via sandwiching a photothermal Co O layer between a BiVO photoanode film and an FeOOH/NiOOH electrocatalyst sheet. The deposited Co O layer manifests compelling photothermal effect upon near-infrared irradiation and raises the temperature of the photoanodes in situ, leading to extended light absorption, enhanced charge transfer, and accelerated water oxidation kinetics simultaneously. The judiciously designed NiOOH/FeOOH/Co O /BiVO photoanode renders a superior photocurrent density of 6.34 mA cm at 1.23 V versus a reversible reference electrode (V ) with outstanding applied bias photon-to-current efficiency of 2.72% at 0.6 V . In addition to the metal oxide, a wide variety of metal sulfides, nitrides, and phosphides (e.g., CoS, CoN, and CoP) can be exploited as the heaters to yield high-performance BiVO -based photoanodes. Apart from BiVO , other metal oxides (e.g., Fe O and TiO ) can also be covered by photothermal materials to impart significantly promoted water splitting. This simple yet general strategy provides a unique platform to capitalize on their photothermal characteristics to engineer high-performing energy conversion and storage materials and devices.

摘要

光阳极同时调控光吸收、电荷分离和水氧化过程的能力,是实现高效光电化学(PEC)水分解的一项重要努力。在此,报道了一种稳健的策略,即通过在BiVO光阳极薄膜和FeOOH/NiOOH电催化剂片之间夹入一层光热CoO层,显著改善PEC水分解性能。沉积的CoO层在近红外照射下表现出显著的光热效应,可原位提高光阳极的温度,从而同时实现光吸收的扩展、电荷转移的增强和水氧化动力学的加速。经过精心设计的NiOOH/FeOOH/CoO/BiVO光阳极在相对于可逆参比电极(V)为1.23 V时,呈现出6.34 mA cm的优异光电流密度,在0.6 V时具有2.72%的出色外加偏压光子到电流效率。除了金属氧化物外,多种金属硫化物、氮化物和磷化物(如CoS、CoN和CoP)也可作为加热器,以制备高性能的基于BiVO的光阳极。除了BiVO外,其他金属氧化物(如FeO和TiO)也可被光热材料覆盖,以显著促进水分解。这种简单而通用的策略提供了一个独特的平台,可利用其光热特性来设计高性能的能量转换和存储材料及器件。

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