首页
关于我们
​bevictor韦德国际简介
经理致辞
领导团队
历史沿革
团队队伍
教职人员
实验室人员
科学研究
研究团队
研究进展
支撑平台
人才培养
旗下产业
研究生教育
物理实验教学中心
教育培训
党团工作
党建工作
团建工作
教师风采
员工寄语
招生录取
本科生招生
研究生招生
国际交流
交流访问
学术会议
最新动态
学术讲座
通知公告
综合新闻
bevictor韦德国际主页
邮箱登录

Charge-transfer dipole low-frequency vibronic excitation at single-molecular scale

2024-10-28

Abstract

Scanning tunneling microscopy (STM) vibronic spectroscopy, which has provided submolecular insights into electron-vibration (vibronic) coupling, faces challenges when probing the pivotal low-frequency vibronic excitations. Because of eigenstate broadening on solid substrates, resolving low-frequency vibronic states demands strong decoupling. This work designs a type II band alignment in STM junction to achieve effective charge-transfer state decoupling. This strategy enables the successful identification of the lowest-frequency Hg1) (Raman-active Hg mode) vibronic excitation within single C60 molecules, which, despite being notably pronounced in electron transport of C60 single-molecule transistors, has remained hidden at submolecular level. Our results show that the observed Hg1) excitation is “anchored” to all molecules, irrespective of local geometry, challenging common understanding of structural definition of vibronic excitation governed by Franck-Condon principle. Density functional theory calculations reveal existence of molecule-substrate interfacial charge-transfer dipole, which, although overlooked previously, drives the dominant Hg1) excitation. This charge-transfer dipole is not specific but must be general at interfaces, influencing vibronic coupling in charge transport.

文章链接:C. Lou, Y. Guan, X, Cui et al., Charge-transfer dipole low-frequency vibronic excitation at single-molecular scale, Science Advances, DOI: 10.1126/sciadv.ado3470,https://www.science.org/doi/10.1126/sciadv.ado3470

相关推荐
读取内容中,请等待...