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沸石中的银簇:从自组装到开创性的发光性能。

Silver Clusters in Zeolites: From Self-Assembly to Ground-Breaking Luminescent Properties.

机构信息

Chem&Tech - Molecular Imaging and Photonics, KU Leuven , Celestijnenlaan 200F, B-3001 Leuven, Belgium.

CONACYT - Centro de Investigación y Desarrollo Tecnológico en Electroquímica, Parque Industrial Querétaro , Sanfandila s/n, Pedro Escobedo, 76703 Querétaro, Mexico.

出版信息

Acc Chem Res. 2017 Sep 19;50(9):2353-2361. doi: 10.1021/acs.accounts.7b00295. Epub 2017 Sep 1.

Abstract

Interest for functional silver clusters (Ag-CLs) has rapidly grown over years due to large advances in the field of nanoscale fabrication and materials science. The continuous development of strategies to fabricate small-scale silver clusters, together with their interesting physicochemical properties (molecule-like discrete energy levels, for example), make them very attractive for a wide variety of applied research fields, from biotechnology and the environmental sciences to fundamental chemistry and physics. Apart from useful catalytic properties, silver clusters (Ag, n < 10) were recently shown to also exhibit exceptional optical properties. The optical properties and performance of Ag-CLs offer strong potential for their integration into appealing micro(nano)-optoelectronic devices. To date, however, the rational design and directed synthesis of Ag-CLs with specific functionalities has remained elusive. The inability for rational design stems mainly from a lack of understanding of their novel atomic-scale phenomena. This is because accurately studying silver cluster systems at such a scale is hindered by the perturbations introduced during exposure to various experimental probes. For instance, silver possesses a strong tendency to cluster and form ever-larger Ag aggregates while probed with high-energy electron beams and X-ray irradiation. As well, there exists a need to provide a stabilizing environment for which Ag clusters can persist, setting up a complex interacting guest-host system, as isolated silver clusters are confined within a suitable hosting medium. Fundamental research into Ag formation mechanisms and their important optical properties is paramount to establishing truly informed synthesis protocols. Over recent years, we have developed several protocols for the ship-in-a-bottle synthesis of highly luminescent Ag-CLs within the microporous interiors of zeolite frameworks. This approach has yielded materials displaying a wide variety of optical properties, offering a spectrum of possible applications, from nano(micro)photonic devices to smart luminescent labels and sensors. The versatility of the Ag-zeolite multicomponent system is directly related to the intrinsic and complex tunability of the system as a whole. There are several key zeolite parameters that confer properties to the clusters, namely, the framework Si/Al ratio, choice of counterbalancing ions, silver loading, and zeolite topology, and cannot be overlooked. This Account is intended to shed light on the current state-of-the-art of luminescent Ag-CLs confined in zeolitic matrices, emphasizing the use of combinatorial approaches to overcome problems associated with the correct characterization and correlation of their structural, electronic, and photoluminescence properties, all to establish the important design principles for developing functional silver-zeolite-based materials. Additionally, examples of emerging applications and future perspectives for functional luminescent Ag-zeolite materials are addressed in this Account.

摘要

由于纳米制造和材料科学领域的巨大进步,功能化银团簇(Ag-CLs)的研究兴趣在近年来迅速增长。不断发展的制备小规模银团簇的策略,以及它们有趣的物理化学性质(例如分子状离散能级),使它们在生物技术、环境科学、基础化学和物理等广泛的应用研究领域非常有吸引力。除了有用的催化性质外,银团簇(Ag,n<10)最近也被证明具有出色的光学性质。Ag-CLs 的光学性质和性能为将其集成到有吸引力的微(纳)光电设备中提供了强大的潜力。然而,迄今为止,具有特定功能的 Ag-CLs 的合理设计和定向合成仍然难以实现。这种无法进行合理设计的主要原因是缺乏对其新颖原子尺度现象的理解。这是因为在暴露于各种实验探针时,准确研究银团簇系统会受到干扰。例如,在高能电子束和 X 射线辐照下,银具有强烈的团聚和形成越来越大的 Ag 聚集体的趋势。同时,需要提供一个稳定的环境,使 Ag 团簇能够在其中存在,从而建立一个复杂的相互作用的客体-主体系统,因为孤立的银团簇被限制在合适的容纳介质中。对 Ag 形成机制及其重要光学性质的基础研究对于建立真正明智的合成方案至关重要。近年来,我们已经开发了几种在沸石骨架的微孔内进行高度发光的 Ag-CLs 的“ship-in-a-bottle”合成的方案。这种方法得到的材料显示出各种不同的光学性质,提供了从纳米(微)光子器件到智能发光标签和传感器等多种可能的应用。Ag-沸石多组分系统的多功能性直接与其作为一个整体的固有和复杂的可调性有关。有几个关键的沸石参数赋予了团簇特性,即骨架 Si/Al 比、抗衡离子的选择、银负载和沸石拓扑结构,这些都不容忽视。本专题介绍旨在阐明限制在沸石基质中的发光 Ag-CLs 的最新研究现状,强调使用组合方法来克服与正确表征和关联其结构、电子和光致发光性质相关的问题,所有这些都是为了建立开发功能化银-沸石基材料的重要设计原则。此外,本专题介绍还涉及功能化发光 Ag-沸石材料的新兴应用和未来展望。

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