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胶体半导体-金属杂化纳米结构的丰富景观:合成、协同特性及新兴应用。

Rich Landscape of Colloidal Semiconductor-Metal Hybrid Nanostructures: Synthesis, Synergetic Characteristics, and Emerging Applications.

机构信息

Department of Physical Chemistry, Israel Institute for Biological Research, P.O. Box 19, Ness Ziona74100, Israel.

The Institute of Chemistry and Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem, Jerusalem91904, Israel.

出版信息

Chem Rev. 2023 Apr 12;123(7):3790-3851. doi: 10.1021/acs.chemrev.2c00770. Epub 2023 Feb 3.

Abstract

Nanochemistry provides powerful synthetic tools allowing one to combine different materials on a single nanostructure, thus unfolding numerous possibilities to tailor their properties toward diverse functionalities. Herein, we review the progress in the field of semiconductor-metal hybrid nanoparticles (HNPs) focusing on metal-chalcogenides-metal combined systems. The fundamental principles of their synthesis are discussed, leading to a myriad of possible hybrid architectures including Janus zero-dimensional quantum dot-based systems and anisotropic quasi 1D nanorods and quasi-2D platelets. The properties of HNPs are described with particular focus on emergent synergetic characteristics. Of these, the light-induced charge-separation effect across the semiconductor-metal nanojunction is of particular interest as a basis for the utilization of HNPs in photocatalytic applications. The extensive studies on the charge-separation behavior and its dependence on the HNPs structural characteristics, environmental and chemical conditions, and light excitation regime are surveyed. Combining the advanced synthetic control with the charge-separation effect has led to demonstration of various applications of HNPs in different fields. A particular promise lies in their functionality as photocatalysts for a variety of uses, including solar-to-fuel conversion, as a new type of photoinitiator for photopolymerization and 3D printing, and in novel chemical and biomedical uses.

摘要

纳米化学提供了强大的合成工具,使人们能够将不同的材料组合在单个纳米结构上,从而为各种功能定制其性能提供了无数可能性。本文综述了半导体-金属杂化纳米粒子(HNPs)领域的进展,重点关注金属-硫属化物-金属组合系统。讨论了它们的合成基本原理,导致了无数可能的杂化结构,包括基于 Janus 零维量子点的系统和各向异性准一维纳米棒和准二维薄片。描述了 HNPs 的性质,特别关注新兴的协同特性。其中,半导体-金属纳米结上的光致电荷分离效应作为在光催化应用中利用 HNPs 的基础尤为有趣。综述了广泛研究的电荷分离行为及其对 HNPs 结构特征、环境和化学条件以及光激发状态的依赖性。将先进的合成控制与电荷分离效应相结合,已经展示了 HNPs 在不同领域的各种应用。特别有前途的是它们作为光催化剂的功能,可用于各种用途,包括太阳能转化为燃料,作为光聚合和 3D 打印的新型光引发剂,以及在新型化学和生物医学用途中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5166/10103135/0fd664f587e2/cr2c00770_0044.jpg

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