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碲纳米材料的合成与应用进展

Progress in the Synthesis and Application of Tellurium Nanomaterials.

作者信息

Zhu Hongliang, Fan Li, Wang Kaili, Liu Hao, Zhang Jiawei, Yan Shancheng

机构信息

School of Materials Science and Engineering, Nanjing University of Posts and Telecommunications, Nanjing 210023, China.

School of Integrated Circuit Science and Engineering, Nanjing University of Posts and Telecommunications, Nanjing 210023, China.

出版信息

Nanomaterials (Basel). 2023 Jul 12;13(14):2057. doi: 10.3390/nano13142057.

Abstract

In recent decades, low-dimensional nanodevices have shown great potential to extend Moore's Law. The n-type semiconductors already have several candidate materials for semiconductors with high carrier transport and device performance, but the development of their p-type counterparts remains a challenge. As a p-type narrow bandgap semiconductor, tellurium nanostructure has outstanding electrical properties, controllable bandgap, and good environmental stability. With the addition of methods for synthesizing various emerging tellurium nanostructures with controllable size, shape, and structure, tellurium nanomaterials show great application prospects in next-generation electronics and optoelectronic devices. For tellurium-based nanomaterials, scanning electron microscopy and transmission electron microscopy are the main characterization methods for their morphology. In this paper, the controllable synthesis methods of different tellurium nanostructures are reviewed, and the latest progress in the application of tellurium nanostructures is summarized. The applications of tellurium nanostructures in electronics and optoelectronics, including field-effect transistors, photodetectors, and sensors, are highlighted. Finally, the future challenges, opportunities, and development directions of tellurium nanomaterials are prospected.

摘要

近几十年来,低维纳米器件在拓展摩尔定律方面展现出了巨大潜力。n型半导体已经有几种具有高载流子传输和器件性能的半导体候选材料,但其p型对应物的开发仍然是一项挑战。作为一种p型窄带隙半导体,碲纳米结构具有出色的电学性能、可控的带隙和良好的环境稳定性。随着合成各种尺寸、形状和结构可控的新兴碲纳米结构方法的增加,碲纳米材料在下一代电子和光电器件中显示出巨大的应用前景。对于碲基纳米材料,扫描电子显微镜和透射电子显微镜是其形貌的主要表征方法。本文综述了不同碲纳米结构的可控合成方法,并总结了碲纳米结构应用的最新进展。重点介绍了碲纳米结构在电子学和光电子学中的应用,包括场效应晶体管、光电探测器和传感器。最后,展望了碲纳米材料未来面临的挑战、机遇和发展方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/75eb/10384241/f43c3e388e0d/nanomaterials-13-02057-g001.jpg

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