Li Hui, Jia Chao, Meng Xianwei, Li Hongbo
Beijing Key Laboratory of Construction-Tailorable Advanced Functional Materials and Green Applications, School of Materials Science & Engineering, Beijing Institute of Technology, Beijing, China.
Laboratory of Controllable Preparation and Application of Nanomaterials, CAS Key Laboratory of Cryogenics, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, China.
Front Chem. 2019 Jan 8;6:652. doi: 10.3389/fchem.2018.00652. eCollection 2018.
Colloidal nanocrystals (NCs) have emerged as promising materials in optoelectronic devices and biological imaging application due to their tailorable properties through size, shape, and composition. Among these NCs, metal phosphide is an important class, in parallel with metal chalcogenide. In this review, we summarize the recent progress regarding the chemical synthesis and applications of colloidal metal phosphide NCs. As the most important metal phosphide NCs, indium phosphide (InP) NCs have been intensively investigated because of their low toxicity, wide and tunable emission range from visible to the near-infrared region. Firstly, we give a brief overview of synthetic strategies to InP NCs, highlighting the benefit of employing zinc precursors as reaction additive and the importance of different phosphorus precursors to improve the quality of the InP NCs, in terms of size distribution, quantum yield, colloidal stability, and non-blinking behavior. Next, we discuss additional synthetic techniques to overcome the issues of lattice mismatch in the synthesis of core/shell metal phosphide NCs, by constructing an intermediate layer between core/shell or designing a shell with gradient composition in a radial direction. We also envision future research directions of InP NCs. The chemical synthesis of other metal phosphide NCs, such as II-V metal phosphide NCs (CdP, ZnP) and transition metal phosphides NCs (CuP, FeP) is subsequently introduced. We finally discuss the potential applications of colloidal metal phosphide NCs in photovoltaics, light-emitting diodes, and lithium ion battery. An overview of several key applications based on colloidal metal phosphide NCs is provided at the end.
胶体纳米晶体(NCs)因其可通过尺寸、形状和组成进行定制的特性,已成为光电器件和生物成像应用中很有前景的材料。在这些纳米晶体中,金属磷化物与金属硫族化物一样,是重要的一类。在本综述中,我们总结了关于胶体金属磷化物纳米晶体化学合成及应用的最新进展。作为最重要的金属磷化物纳米晶体,磷化铟(InP)纳米晶体因其低毒性、从可见光到近红外区域的宽且可调谐发射范围而受到深入研究。首先,我们简要概述了InP纳米晶体的合成策略,强调了使用锌前驱体作为反应添加剂的益处以及不同磷前驱体对提高InP纳米晶体质量的重要性,包括尺寸分布、量子产率、胶体稳定性和非闪烁行为等方面。接下来,我们讨论了通过在核/壳之间构建中间层或设计具有径向梯度组成的壳层来克服核/壳金属磷化物纳米晶体合成中晶格失配问题的其他合成技术。我们还展望了InP纳米晶体未来的研究方向。随后介绍了其他金属磷化物纳米晶体的化学合成,如II-V族金属磷化物纳米晶体(CdP、ZnP)和过渡金属磷化物纳米晶体(CuP、FeP)。最后,我们讨论了胶体金属磷化物纳米晶体在光伏、发光二极管和锂离子电池中的潜在应用。最后提供了基于胶体金属磷化物纳米晶体的几个关键应用的概述。