Wang Bing, Biesold Gill M, Zhang Meng, Lin Zhiqun
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Chem Soc Rev. 2021 Jun 21;50(12):6914-6949. doi: 10.1039/d0cs01134g. Epub 2021 Apr 27.
Amorphous inorganic semiconductors have attracted growing interest due to their unique electrical and optical properties that arise from their intrinsic disordered structure and thermodynamic metastability. Recently, amorphous inorganic semiconductors have been applied in a variety of new technologies, including solar cells, photoelectrocatalysis, and photocatalysis. It has been reported that amorphous phases can improve both efficiency and stability in these applications. While these phenomena are well established, their mechanisms have long remained unclear. This review first introduces the general background of amorphous inorganic semiconductor properties and synthesis. Then, the recent successes and current challenges of amorphous inorganic semiconductor-based materials for applications in solar cells, photoelectrocatalysis, and photocatalysis are addressed. In particular, we discuss the mechanisms behind the remarkable performances of amorphous inorganic semiconductors in these fields. Finally, we provide insightful perspectives into further developments for applications of amorphous inorganic semiconductors.
非晶态无机半导体因其内在无序结构和热力学亚稳定性所产生的独特电学和光学性质而引起了越来越多的关注。近年来,非晶态无机半导体已应用于多种新技术,包括太阳能电池、光电催化和光催化。据报道,非晶相可提高这些应用中的效率和稳定性。虽然这些现象已得到充分证实,但其机制长期以来一直不清楚。本综述首先介绍了非晶态无机半导体性质和合成的一般背景。然后,阐述了基于非晶态无机半导体的材料在太阳能电池、光电催化和光催化应用方面的近期成果和当前挑战。特别是,我们讨论了非晶态无机半导体在这些领域卓越性能背后的机制。最后,我们对非晶态无机半导体应用的进一步发展提供了有见地的观点。