电导
晋升(国际象棋)
分子
干扰(通信)
纳米技术
物理
电子线路
材料科学
量子
化学物理
光电子学
量子力学
计算机科学
电信
凝聚态物理
政治学
法学
频道(广播)
政治
作者
Hongliang Chen,Songjun Hou,Qingqing Wu,Feng Jiang,Ping Zhou,Long Zhang,Yang Jiao,Bo Song,Qing‐Hui Guo,Xiao‐Yang Chen,Wenjing Hong,Colin J. Lambert,J. Fraser Stoddart
出处
期刊:Matter
[Elsevier BV]
日期:2021-09-15
卷期号:4 (11): 3662-3676
被引量:21
标识
DOI:10.1016/j.matt.2021.08.016
摘要
Summary Single-molecule electronics is a sub-field of nanoelectronics in which individual devices are formed from single molecules placed between source and drain electrodes. During the past few years, scientists have demonstrated that the flow of electricity through these devices is controlled by quantum interference (QI) between electrons passing from source to drain. Their future development, however, is hampered by difficulties in controlling interference effects. Herein, we demonstrate that electron transport in tetracationic cyclophane circuits is mediated by QI between channels formed from two lowest unoccupied molecular orbitals (LUMOs), while their highest occupied molecular orbitals (HOMOs) play no significant role. Energy differences between these two LUMO channels induce constructive interference, leading to high conductance. By contrast, phase differences between these LUMO channels result in destructive interference and a suppression in overall conductance. Such a design of single-molecule circuits enables the construction of single-molecule conductors and insulators based on a single cyclophane platform.
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