Scanning probe microscopy in probing low-dimensional carbon-based nanostructures and nanomaterials

Chi Zhang, Zewei Yi, Wei Xu
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引用次数: 7

Abstract

Carbon, as an indispensable chemical element on Earth, has diverse covalent bonding ability, which enables construction of extensive pivotal carbon-based structures in multiple scientific fields. The extraordinary physicochemical properties presented by pioneering synthetic carbon allotropes, typically including fullerenes, carbon nanotubes, and graphene, have stimulated broad interest in fabrication of carbon-based nanostructures and nanomaterials. Accurate regulation of topology, size, and shape, as well as controllably embedding target sp n -hybridized carbons in molecular skeletons, is significant for tailoring their structures and consequent properties and requires atomic precision in their preparation. Scanning probe microscopy (SPM), combined with on-surface synthesis strategy, has demonstrated its capabilities in fabrication of various carbon-based nanostructures and nanomaterials with atomic precision, which has long been elusive for conventional solution-phase synthesis due to realistic obstacles in solubility, isolation, purification, etc. More intriguingly, atom manipulation via an SPM tip allows unique access to local production of highly reactive carbon-based nanostructures. In addition, SPM provides topographic information of carbon-based nanostructures as well as their characteristic electronic structures with unprecedented submolecular resolution in real space. In this review, we overview recent exciting progress in the delicate application of SPM in probing low-dimensional carbon-based nanostructures and nanomaterials, which will open an avenue for the exploration and development of elusive and undiscovered carbon-based nanomaterials.
扫描探针显微镜在低维碳基纳米结构和纳米材料探测中的应用
碳作为地球上不可缺少的化学元素,具有多种共价键能力,这使得在多个科学领域构建广泛的关键碳基结构成为可能。开创性的合成碳同素异形体(通常包括富勒烯、碳纳米管和石墨烯)所表现出的非凡的物理化学性质,激发了人们对碳基纳米结构和纳米材料制造的广泛兴趣。精确地调节拓扑结构、大小和形状,以及在分子骨架中可控地嵌入目标sp n杂化碳,对于调整其结构和随后的性质具有重要意义,并且在制备过程中需要原子精度。扫描探针显微镜(SPM)结合表面合成策略,已经证明了其在制备各种碳基纳米结构和原子精度纳米材料方面的能力,这些纳米结构和纳米材料长期以来由于溶解度、分离、纯化等现实障碍而无法通过传统的溶液相合成来实现。更有趣的是,通过SPM尖端的原子操纵可以独特地获得本地生产高活性碳基纳米结构的途径。此外,SPM以前所未有的亚分子分辨率在真实空间中提供了碳基纳米结构的地形信息及其特征电子结构。在这篇综述中,我们概述了近年来SPM在探测低维碳基纳米结构和纳米材料方面的应用进展,这将为探索和开发难以捉摸和未被发现的碳基纳米材料开辟一条道路。
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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CiteScore
7.40
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