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用于功能性无机纳米材料直接光刻的刺激响应性表面配体

Stimuli-Responsive Surface Ligands for Direct Lithography of Functional Inorganic Nanomaterials.

作者信息

Pan Jia-Ahn, Cho Himchan, Coropceanu Igor, Wu Haoqi, Talapin Dmitri V

机构信息

Department of Chemistry, James Franck Institute, and Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, United States.

Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

出版信息

Acc Chem Res. 2023 Sep 5;56(17):2286-2297. doi: 10.1021/acs.accounts.3c00226. Epub 2023 Aug 8.

Abstract

ConspectusColloidal nanocrystals (NCs) have emerged as a diverse class of materials with tunable composition, size, shape, and surface chemistry. From their facile syntheses to unique optoelectronic properties, these solution-processed nanomaterials are a promising alternative to materials grown as bulk crystals or by vapor-phase methods. However, the integration of colloidal nanomaterials in real-world devices is held back by challenges in making patterned NC films with the resolution, throughput, and cost demanded by device components and applications. Therefore, suitable approaches to pattern NCs need to be established to aid the transition from individual proof-of-concept NC devices to integrated and multiplexed technological systems.In this Account, we discuss the development of stimuli-sensitive surface ligands that enable NCs to be patterned directly with good pattern fidelity while retaining desirable properties. We focus on rationally selected ligands that enable changes in the NC dispersibility by responding to light, electron beam, and/or heat. First, we summarize the fundamental forces between colloidal NCs and discuss the principles behind NC stabilization/destabilization. These principles are applied to understanding the mechanisms of the NC dispersibility change upon stimuli-induced ligand modifications. Six ligand-based patterning mechanisms are introduced: ligand cross-linking, ligand decomposition, ligand desorption, ligand exchange, ion/ligand binding, and ligand-aided increase of ionic strength. We discuss examples of stimuli-sensitive ligands that fall under each mechanism, including their chemical transformations, and address how these ligands are used to pattern either sterically or electrostatically stabilized colloidal NCs. Following that, we explain the rationale behind the exploration of different types of stimuli, as well as the advantages and disadvantages of each stimulus.We then discuss relevant figures-of-merit that should be considered when choosing a particular ligand chemistry or stimulus for patterning NCs. These figures-of-merit pertain to either the pattern quality (e.g., resolution, edge and surface roughness, layer thickness), or to the NC material quality (e.g., photo/electro-luminescence, electrical conductivity, inorganic fraction). We outline the importance of these properties and provide insights on optimizing them. Both the pattern quality and NC quality impact the performance of patterned NC devices such as field-effect transistors, light-emitting diodes, color-conversion pixels, photodetectors, and diffractive optical elements. We also give examples of proof-of-concept patterned NC devices and evaluate their performance. Finally, we provide an outlook on further expanding the chemistry of stimuli-sensitive ligands, improving the NC pattern quality, progress toward 3D printing, and other potential research directions. Ultimately, we hope that the development of a patterning toolbox for NCs will expedite their implementation in a broad range of applications.

摘要

综述

胶体纳米晶体(NCs)已成为一类多样化的材料,其组成、尺寸、形状和表面化学性质均可调。从其简便的合成方法到独特的光电特性,这些通过溶液法制备的纳米材料是块状晶体生长法或气相法制备材料的一种有前景的替代方案。然而,胶体纳米材料在实际器件中的集成受到了挑战,即在制备具有器件组件和应用所需的分辨率、产量和成本的图案化NC薄膜方面存在困难。因此,需要建立合适的图案化NCs的方法,以帮助从单个概念验证NC器件过渡到集成和多路复用技术系统。

在本综述中,我们讨论了刺激敏感表面配体的发展,这些配体能够使NCs在保持所需特性的同时,以良好的图案保真度直接进行图案化。我们重点关注通过合理选择的配体,使其能够通过对光、电子束和/或热的响应来改变NCs的分散性。首先,我们总结了胶体NCs之间的基本作用力,并讨论了NC稳定/失稳背后的原理。这些原理被应用于理解刺激诱导的配体修饰后NC分散性变化的机制。介绍了六种基于配体的图案化机制:配体交联、配体分解、配体解吸、配体交换、离子/配体结合以及配体辅助的离子强度增加。我们讨论了属于每种机制的刺激敏感配体的例子,包括它们的化学转化,并阐述了这些配体如何用于对空间稳定或静电稳定的胶体NCs进行图案化。在此之后,我们解释了探索不同类型刺激的基本原理,以及每种刺激的优缺点。

然后,我们讨论了在选择用于图案化NCs的特定配体化学或刺激时应考虑的相关性能指标。这些性能指标要么与图案质量(例如分辨率、边缘和表面粗糙度、层厚度)有关,要么与NC材料质量(例如光/电致发光、电导率、无机成分)有关。我们概述了这些性能的重要性,并提供了优化它们的见解。图案质量和NC质量都会影响图案化NC器件(如场效应晶体管、发光二极管、颜色转换像素、光电探测器和衍射光学元件)的性能。我们还给出了概念验证图案化NC器件的例子,并评估了它们的性能。最后,我们展望了进一步扩展刺激敏感配体的化学性质、提高NC图案质量、向3D打印发展以及其他潜在研究方向。最终,我们希望开发一个用于NCs的图案化工具箱将加速它们在广泛应用中的实施。

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