干扰(通信)
量子隧道
电导
分子轨道
量子
量子干涉
物理
原子轨道
违反直觉
分子电子学
分子
材料科学
凝聚态物理
轨道能级差
化学
量子力学
分子物理学
纳米技术
宏观量子现象
量子测量
信号(编程语言)
光电子学
扫描隧道显微镜
频道(广播)
化学物理
作者
Zhe‐Hong Yu,Chengjia Jing,Yang‐Kun Qu,Mingliang Zhang,Shi‐Jie Ge,Cheng Zhong,Ruihong Liu,Yaping Zang,Zuo‐Quan Jiang
标识
DOI:10.1002/anie.202523778
摘要
Abstract Controlling molecular conductance beyond highest occupied molecular orbital and lowest unoccupied molecular orbital (HOMO–LUMO) interference is essential for advancing single‐molecule electronics. Here we employ π–σ–π frameworks—linear diphenylmethane and orthogonal 9,9′‐spirobifluorene—to investigate destructive quantum interference (DQI) governed by orbitals on the same side. Four model molecules ( DM22‐MT , DM44‐MT , SF33‐MT , SF44‐MT ) were designed with site‐specific –SMe anchoring groups and examined by scanning tunneling microscope–break junction (STM–BJ) measurements and theoretical simulations. All exhibit intrinsically low conductance, consistent with destructive quantum interference (DQI) effect. Importantly, site‐dependent effects in spiro systems disrupt spiro‐conjugation and alter anchor–electrode coupling, leading to counterintuitive conductance trends. This study provides the first experimental evidence for bilateral DQI in π–σ–π systems and establishes a molecular design strategy for insulating and functionalized single‐molecule devices.
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