分子电子学
纳米技术
数码产品
材料科学
工程类
分子
物理
电气工程
量子力学
作者
Chenshuai Yan,Chao Fang,Jinyu Gan,Jia Wang,Xin Zhao,Xiaojing Wang,Jing Li,Yanxi Zhang,Haojie Liu,Xiaohui Li,Jie Bai,Junyang Liu,Wenjing Hong
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-10-12
卷期号:18 (42): 28531-28556
被引量:49
标识
DOI:10.1021/acsnano.4c10389
摘要
1974,29, 277-283), researchers have developed various fabrication and characterization techniques to explore the electrical properties of molecules. With the push of electrical characterizations and data analysis methodologies, the reproducibility issues of the single-molecule conductance measurement have been chiefly resolved, and the origins of conductance variation among different devices have been investigated. Numerous prototypical molecular electronic devices with external physical and chemical stimuli have been demonstrated based on the advances of instrumental and methodological developments. These devices enable functions such as switching, logic computing, and synaptic-like computing. However, as the goal of molecular electronics, how can molecular-based intelligence be achieved through single-molecule electronic devices? At the fiftieth anniversary of molecular electronics, we try to answer this question by summarizing recent progress and providing an outlook on single-molecule electronics. First, we review the fabrication methodologies for molecular junctions, which provide the foundation of molecular electronics. Second, the preliminary efforts of molecular logic devices toward integration circuits are discussed for future potential intelligent applications. Third, some molecular devices with sensing applications through physical and chemical stimuli are introduced, demonstrating phenomena at a single-molecule scale beyond conventional macroscopic devices. From this perspective, we summarize the current challenges and outlook prospects by describing the concepts of "AI for single-molecule electronics" and "single-molecule electronics for AI".
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