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用于高效光电化学水分解的赤铁矿空心球阵列光阳极

Hematite Hollow-Sphere-Array Photoanodes for Efficient Photoelectrochemical Water Splitting.

作者信息

Yang Rongge, Xiao Shuang, Zhang Jingnan, Tang Songtao, Xu Ruimei, Tong Yexiang

机构信息

MOE Laboratory of Bioinorganic and Synthetic Chemistry, The Key Lab of Low-Carbon Chemistry and Energy Conservation of Guangdong Province, School of Chemistry, Sun Yat-sen University, Guangzhou, 510275, China.

Shenzhen Key Laboratory of Ultraintense Laser and Advanced Material Technology, Center for Intense Laser Application Technology (iLaT) and College of Engineering Physics, Shenzhen Technology University, Shenzhen, 518118, China.

出版信息

Small. 2024 Jul;20(28):e2310752. doi: 10.1002/smll.202310752. Epub 2024 Feb 12.

Abstract

Constructing 3D nanophotonic structures is regarded as an effective method to realize efficient solar-to-hydrogen conversion. These photonic structures can enhance the absorbance of photoelectrodes by the light trapping effect, promote the charge separation by designable charge transport pathway and provide a high specific surface area for catalytic reaction. However, most 3D structures reported so far mainly focused on the influence of light absorption and lacked a systematic investigation of the overall water splitting process. Herein, hematite hollow-sphere-array photoanodes are fabricated through a facile hydrothermal method with polystyrene templates. Validating by simulations and experiments, the hollow sphere array is proved to enhance the efficiency of light harvesting, charge separation and surface reaction at the same time. With an additional annealing treatment in oxygen, a photocurrent density of 2.26 mA cm at 1.23 V versus reversible hydrogen electrode can be obtained, which is 3.70 times larger than that with a planar structure in otherwise the same system. This work gains an insight into the photoelectrochemical water splitting process, which is valuable for the further design of advancing solar driven water splitting devices.

摘要

构建三维纳米光子结构被认为是实现高效太阳能制氢转换的有效方法。这些光子结构可通过光捕获效应提高光电极的吸光度,通过可设计的电荷传输途径促进电荷分离,并为催化反应提供高比表面积。然而,迄今为止报道的大多数三维结构主要集中在光吸收的影响上,缺乏对整个水分解过程的系统研究。在此,通过以聚苯乙烯模板的简便水热法制备了赤铁矿空心球阵列光阳极。经模拟和实验验证,空心球阵列被证明能同时提高光捕获、电荷分离和表面反应的效率。在氧气中进行额外的退火处理后,在相对于可逆氢电极1.23 V时可获得2.26 mA cm的光电流密度,这比在其他条件相同的系统中平面结构的光电流密度大3.70倍。这项工作深入了解了光电化学水分解过程,这对于进一步设计先进的太阳能驱动水分解装置具有重要价值。

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