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多型金属硫族化物纳米晶体

Polytypic metal chalcogenide nanocrystals.

作者信息

Wu Liang, Li Yi, Liu Guo-Qiang, Yu Shu-Hong

机构信息

Department of Chemistry, New Cornerstone Science Laboratory, Institute of Biomimetic Materials & Chemistry, Division of Nanomaterials & Chemistry, Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 230026, China.

Department of Chemistry, Institute of Innovative Materials, Department of Materials Science and Engineering, Southern University of Science and Technology of China, Shenzhen 518055, China.

出版信息

Chem Soc Rev. 2024 Sep 30;53(19):9832-9873. doi: 10.1039/d3cs01095c.

Abstract

By engineering chemically identical but structurally distinct materials into intricate and sophisticated polytypic nanostructures, which often surpass their pure phase objects and even produce novel physical and chemical properties, exciting applications in the fields of photovoltaics, electronics and photocatalysis can be achieved. In recent decades, various methods have been developed for synthesizing a library of polytypic nanocrystals encompassing IV, III-V and II-VI polytypic semiconductors. The exceptional performances of polytypic metal chalcogenide nanocrystals have been observed, making them highly promising candidates for applications in photonics and electronics. However, achieving high-precision control over the morphology, composition, crystal structure, size, homojunctions, and periodicity of polytypic metal chalcogenide nanostructures remains a significant synthetic challenge. This review article offers a comprehensive overview of recent progress in the synthesis and control of polytypic metal chalcogenide nanocrystals using colloidal synthetic strategies. Starting from a concise introduction on the crystal structures of metal chalcogenides, the subsequent discussion delves into the colloidal synthesis of polytypic metal chalcogenide nanocrystals, followed by an in-depth exploration of the key factors governing polytypic structure construction. Subsequently, we provide comprehensive insights into the physical properties of polytypic metal chalcogenide nanocrystals, which exhibit strong correlations with their applications. Thereafter, we emphasize the significance of polytypic nanostructures in various applications, such as photovoltaics, photocatalysis, transistors, thermoelectrics, stress sensors, and the electrocatalytic hydrogen evolution. Finally, we present a summary of the recent advancements in this research field and provide insightful perspectives on the forthcoming challenges, opportunities, and future research directions.

摘要

通过将化学性质相同但结构不同的材料设计成复杂而精密的多型纳米结构,这些结构常常超越其纯相物体,甚至产生新颖的物理和化学性质,从而在光伏、电子和光催化领域实现令人兴奋的应用。近几十年来,已经开发出各种方法来合成一系列多型纳米晶体,包括IV族、III-V族和II-VI族多型半导体。已经观察到多型金属硫族化物纳米晶体具有卓越的性能,使其成为光子学和电子学应用中极具潜力的候选材料。然而,对多型金属硫族化物纳米结构的形态、组成、晶体结构、尺寸、同质结和周期性实现高精度控制仍然是一个重大的合成挑战。这篇综述文章全面概述了使用胶体合成策略在多型金属硫族化物纳米晶体合成和控制方面的最新进展。从对金属硫族化物晶体结构的简要介绍开始,随后的讨论深入探讨了多型金属硫族化物纳米晶体的胶体合成,接着深入探究了控制多型结构构建的关键因素。随后,我们对多型金属硫族化物纳米晶体的物理性质提供了全面的见解,这些性质与其应用密切相关。此后,我们强调多型纳米结构在各种应用中的重要性,如光伏、光催化、晶体管、热电、应力传感器和电催化析氢。最后,我们总结了该研究领域的最新进展,并对即将面临的挑战、机遇和未来研究方向提供了有见地的观点。

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