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由生长在锌箔上的氧化锌构建块制备的用于光电化学太阳能制氢的多孔ZnCdSe/ZnO纳米棒光阳极。

Porous ZnCdSe/ZnO Nanorod Photoanode Fabricated from ZnO Building Blocks Grown on Zn Foil for Photoelectrochemical Solar Hydrogen Production.

作者信息

Patil Ruturaj P, Mahadik Mahadeo A, Chae Weon-Sik, Choi Sun Hee, Jang Jum Suk

机构信息

Division of Biotechnology, Safety, Environment and Life Science Institute, College of Environmental and Bioresource Sciences, Jeonbuk National University, Iksan 54596, Republic of Korea.

Daegu Center, Korea Basic Science Institute, Daegu 41566, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 9;15(31):37361-37370. doi: 10.1021/acsami.3c05476. Epub 2023 Jul 27.

Abstract

Solar energy is the most promising, efficient, environmentally friendly energy source with the potential to meet global demand due to its non-polluting nature. Herein, a porous ZnCdSe/ZnO nanorod (NR) heterojunction was synthesized by hydrothermal and low-temperature solvothermal methods. First, the ZnO NR was grown on a Zinc foil, and an inorganic-organic hybrid ZnSe(en) material was developed by the low-temperature solvothermal method. In this work, the ZnO NR acted as a base material and a building block for the growth of ZnSe(en). Moreover, after the solvothermal process, the reduced Se reacts with the ZnO NR and forms inorganic-organic hybrid ZnSe(en). After the selenization process, the obtained material shows a red brick color due to the absorbance of excessive Se metal particles during the solvothermal process. Furthermore, in order to enhance the photoelectrochemical properties, the Cd ion exchange method was applied at various temperatures (140, 160, and 180 °C for 3 h) to produce a precursor material to a porous ZnCdSe/ZnO NR nanostructure. The optimum ZnCdSe/ZnO NR-160 photoanode showed a high photocurrent density of 7.8 mA·cm at -0.5 V . Ag/AgCl with a hydrogen evolution rate of 199 μmol·cm/3 h. The improved photocurrent performance was attributed to effective light absorption and prolonged recombination lifetime.

摘要

太阳能是最有前景、高效且环保的能源,因其无污染的特性而有潜力满足全球能源需求。在此,通过水热法和低温溶剂热法合成了一种多孔ZnCdSe/ZnO纳米棒(NR)异质结。首先,在锌箔上生长ZnO纳米棒,并通过低温溶剂热法制备无机-有机杂化ZnSe(en)材料。在本工作中,ZnO纳米棒作为ZnSe(en)生长的基础材料和构建单元。此外,溶剂热过程后,还原态的硒与ZnO纳米棒反应形成无机-有机杂化ZnSe(en)。硒化过程后,由于在溶剂热过程中过量硒金属颗粒的吸收,所得材料呈现红砖色。此外,为了增强光电化学性能,在不同温度(140、160和180°C,3小时)下采用镉离子交换法制备多孔ZnCdSe/ZnO NR纳米结构的前驱体材料。最佳的ZnCdSe/ZnO NR-160光阳极在-0.5 V(相对于Ag/AgCl)时显示出7.8 mA·cm的高光电流密度,析氢速率为199 μmol·cm/3 h。光电流性能的改善归因于有效的光吸收和延长的复合寿命。

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