Li Bisheng, Lai Cui, Zeng Guangming, Huang Danlian, Qin Lei, Zhang Mingming, Cheng Min, Liu Xigui, Yi Huan, Zhou Chengyun, Huang Fanglong, Liu Shiyu, Fu Yukui
College of Environmental Science and Engineering, Hunan University, Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, LuShan South Road, Changsha, 410082, Hunan, P. R. China.
Small. 2019 Feb;15(8):e1804565. doi: 10.1002/smll.201804565. Epub 2019 Jan 25.
Semiconductor photocatalysis, a sustainable and renewable technology, is deemed to be a new path to resolve environmental pollution and energy shortage. The development of effective photocatalysts, especially the metal-free photocatalysts, is a critical determinant of this technique. The recently emerged 2D material of black phosphorus with distinctive properties of tunable direct bandgap, ultrahigh charge mobility, fortified optical absorption, large specific surface area, and anisotropic structure has captured enormous attention since the first exfoliation of bulk black phosphorus into mono- or few layered phosphorene in 2014. In this article, the state-of-the-art preparation methods are first summarized for bulk black phosphorus, phosphorene, and black phosphorus quantum dot and then the fundamental structure and electronic and optical properties are analyzed to evaluate its feasibility as a metal-free photocatalyst. Various modifications on black phosphorus are also summarized to enhance its photocatalytic performance. Furthermore, the multifarious applications such as solar to energy conversion, organic removal, disinfection, nitrogen fixation, and photodynamic therapy are discussed and some of the future challenges and opportunities for black phosphorus research are proposed. This review reveals that the rising star of black phosphorus will be a multifunctional material in the postgraphene era.
半导体光催化作为一种可持续且可再生的技术,被视为解决环境污染和能源短缺问题的新途径。开发有效的光催化剂,尤其是无金属光催化剂,是这项技术的关键决定因素。自2014年块状黑磷首次被剥离成单层或几层磷烯以来,最近出现的具有独特的可调节直接带隙、超高电荷迁移率、增强的光吸收、大比表面积和各向异性结构等特性的二维黑磷材料引起了极大关注。本文首先总结了块状黑磷、磷烯和黑磷量子点的最新制备方法,然后分析了其基本结构以及电子和光学性质,以评估其作为无金属光催化剂的可行性。还总结了对黑磷的各种改性方法以提高其光催化性能。此外,讨论了黑磷在太阳能到能源转换、有机污染物去除、消毒、固氮和光动力疗法等方面的多种应用,并提出了黑磷研究未来面临的一些挑战和机遇。这篇综述表明,黑磷这颗后石墨烯时代的新星将成为一种多功能材料。