阴离子模板银纳米团簇:精确合成和几何结构。

IF 7.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Science and Technology of Advanced Materials Pub Date : 2023-01-01 DOI:10.1080/14686996.2023.2203832
Yusuke Horita, Mai Ishimi, Yuichi Negishi
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引用次数: 5

摘要

金属纳米团簇(NCs)在纳米材料研究中越来越受到关注,因为它们表现出在相应的大块金属中没有观察到的特定尺寸的物理化学性质。其中,银(Ag)纳米碳不仅可以精确合成纯银纳米碳,还可以精确合成阴离子模板银纳米碳。对于阴离子模板的Ag nc,我们可以预期以下功能:1)通过调节中心阴离子(阴离子模板)来控制尺寸和形状;2)通过调节中心阴离子与周围银原子之间的电荷相互作用实现稳定化;3)通过选择中心阴离子的类型实现功能化。本文综述了以卤化物离子、硫离子、氧阴离子、多金属氧酸盐或氢化物/氘化物为中心阴离子为中心阴离子模板的银纳米结构的合成方法和中心阴离子对其几何结构的影响。该综述为阴离子模板化银纳米材料的研究现状提供了参考,有助于促进阴离子模板化银纳米材料具有新颖几何结构和理化性质的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Anion-templated silver nanoclusters: precise synthesis and geometric structure.

Metal nanoclusters (NCs) are gaining much attention in nanoscale materials research because they exhibit size-specific physicochemical properties that are not observed in the corresponding bulk metals. Among them, silver (Ag) NCs can be precisely synthesized not only as pure Ag NCs but also as anion-templated Ag NCs. For anion-templated Ag NCs, we can expect the following capabilities: 1) size and shape control by regulating the central anion (anion template); 2) stabilization by adjusting the charge interaction between the central anion and surrounding Ag atoms; and 3) functionalization by selecting the type of central anion. In this review, we summarize the synthesis methods and influences of the central anion on the geometric structure of anion-templated Ag NCs, which include halide ions, chalcogenide ions, oxoanions, polyoxometalate, or hydride/deuteride as the central anion. This summary provides a reference for the current state of anion-templated Ag NCs, which may promote the development of anion-templated Ag NCs with novel geometric structures and physicochemical properties.

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来源期刊
Science and Technology of Advanced Materials
Science and Technology of Advanced Materials 工程技术-材料科学:综合
CiteScore
10.60
自引率
3.60%
发文量
52
审稿时长
4.8 months
期刊介绍: Science and Technology of Advanced Materials (STAM) is a leading open access, international journal for outstanding research articles across all aspects of materials science. Our audience is the international community across the disciplines of materials science, physics, chemistry, biology as well as engineering. The journal covers a broad spectrum of topics including functional and structural materials, synthesis and processing, theoretical analyses, characterization and properties of materials. Emphasis is placed on the interdisciplinary nature of materials science and issues at the forefront of the field, such as energy and environmental issues, as well as medical and bioengineering applications. Of particular interest are research papers on the following topics: Materials informatics and materials genomics Materials for 3D printing and additive manufacturing Nanostructured/nanoscale materials and nanodevices Bio-inspired, biomedical, and biological materials; nanomedicine, and novel technologies for clinical and medical applications Materials for energy and environment, next-generation photovoltaics, and green technologies Advanced structural materials, materials for extreme conditions.
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