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在ZnFeO-黑磷三维微腔结构上构建锌-磷电荷转移桥:可见-近红外区域的高效光催化剂设计

Constructing Zn-P charge transfer bridge over ZnFeO-black phosphorus 3D microcavity structure: Efficient photocatalyst design in visible-near-infrared region.

作者信息

Wang Lijing, Guan Renquan, Qi Yafang, Zhang Fuli, Li Pan, Wang Junmei, Qu Peng, Zhou Gang, Shi Weilong

机构信息

Henan Engineering Center of New Energy Battery Materials, Henan D&A Engineering Center of Advanced Battery Materials, College of Chemistry and Chemical Engineering, Shangqiu Normal University, Shangqiu 476000, China.

Key Laboratory of Preparation and Applications of Environmentally Friendly Materials of the Ministry of Education, Jilin Normal University, Changchun 130103, China.

出版信息

J Colloid Interface Sci. 2021 Oct 15;600:463-472. doi: 10.1016/j.jcis.2021.05.043. Epub 2021 May 12.

Abstract

Black phosphorus (BP) is one of the most promising visible-near-infrared light-driven photocatalysts with favorite photoelectric properties and unique tunable direct band gap. Nevertheless, the further development of BP is hindered by the fast carrier recombination rate and high Gibbs free energy. Herein, an innovative strategy is developed for the controllable construction of Zn-P bonds induced zinc ferrite/black phosphorus (ZnFeO-BP) three dimensions (3D) microcavity structure. The Zn-P bonds serve as an efficient channel to optimize the carrier transport and Gibbs free energy of BP simultaneously. Besides, the unique 3D core-shell microcavity structure maintains the multiple reflections of sunlight inside the catalysts, which greatly improves the sunlight utilization upon photocatalysis. An optimized photocatalytic hydrogen production rate of 560 µmol hg under near-infrared light (>820 nm) is achieved. A possible photocatalytic mechanism is proposed based on a series of experimental characterizations and theoretical calculations, this work provides a new sight to design high-quantity BP-based full-spectrum photocatalysts for solar energy conversion.

摘要

黑磷(BP)是最具潜力的可见光-近红外光驱动光催化剂之一,具有良好的光电性能和独特的可调节直接带隙。然而,快速的载流子复合率和高吉布斯自由能阻碍了黑磷的进一步发展。在此,开发了一种创新策略,用于可控构建由锌-磷键诱导的铁酸锌/黑磷(ZnFeO-BP)三维(3D)微腔结构。锌-磷键作为一个有效通道,可同时优化黑磷的载流子传输和吉布斯自由能。此外,独特的3D核壳微腔结构使太阳光在催化剂内部保持多次反射,极大地提高了光催化过程中的太阳光利用率。在近红外光(>820nm)下实现了560µmol hg的优化光催化产氢速率。基于一系列实验表征和理论计算,提出了一种可能的光催化机理,这项工作为设计用于太阳能转换的高质量黑磷基全光谱光催化剂提供了新的视角。

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