Guan Jianxin, Jia Chuancheng, Li Yanwei, Liu Zitong, Wang Jinying, Yang Zhongyue, Gu Chunhui, Su Dingkai, Houk Kendall N, Zhang Deqing, Guo Xuefeng
Beijing National Laboratory for Molecular Sciences, State Key Laboratory for Structural Chemistry of Unstable and Stable Species, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, P. R. China.
Beijing National Laboratory for Molecular Sciences, Chinese Academy of Sciences Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, P. R. China.
Sci Adv. 2018 Feb 9;4(2):eaar2177. doi: 10.1126/sciadv.aar2177. eCollection 2018 Feb.
Single-molecule detection can reveal time trajectories and reaction pathways of individual intermediates/transition states in chemical reactions and biological processes, which is of fundamental importance to elucidate their intrinsic mechanisms. We present a reliable, label-free single-molecule approach that allows us to directly explore the dynamic process of basic chemical reactions at the single-event level by using stable graphene-molecule single-molecule junctions. These junctions are constructed by covalently connecting a single molecule with a 9-fluorenone center to nanogapped graphene electrodes. For the first time, real-time single-molecule electrical measurements unambiguously show reproducible large-amplitude two-level fluctuations that are highly dependent on solvent environments in a nucleophilic addition reaction of hydroxylamine to a carbonyl group. Both theoretical simulations and ensemble experiments prove that this observation originates from the reversible transition between the reactant and a new intermediate state within a time scale of a few microseconds. These investigations open up a new route that is able to be immediately applied to probe fast single-molecule physics or biophysics with high time resolution, making an important contribution to broad fields beyond reaction chemistry.
单分子检测能够揭示化学反应和生物过程中单个中间体/过渡态的时间轨迹和反应途径,这对于阐明其内在机制至关重要。我们提出了一种可靠的、无标记的单分子方法,该方法使我们能够通过使用稳定的石墨烯-分子单分子结,在单事件水平上直接探索基本化学反应的动态过程。这些结是通过将一个具有9-芴酮中心的单分子与纳米间隙石墨烯电极共价连接而构建的。首次通过实时单分子电学测量明确显示出可重现的大幅度双能级波动,这些波动在羟胺与羰基的亲核加成反应中高度依赖于溶剂环境。理论模拟和系综实验均证明,这一观察结果源于反应物与一个新的中间态在几微秒的时间尺度内的可逆转变。这些研究开辟了一条能够立即应用于以高时间分辨率探测快速单分子物理或生物物理的新途径,为反应化学之外的广泛领域做出了重要贡献。