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Recognition tunneling

机译:识别隧道

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Single molecules in a tunnel junction can now be interrogated reliably using chemically functionalized electrodes. Monitoring stochastic bonding fluctuations between a ligand bound to one electrode and its target bound to a second electrode ('tethered molecule-pair' configuration) gives insight into the nature of the intermolecular bonding at a single molecule-pair level, and defines the requirements for reproducible tunneling data. Simulations show that there is an instability in the tunnel gap at large currents, and this results in a multiplicity of contacts with a corresponding spread in the measured currents. At small currents (i.e.large gaps) the gap is stable, and functionalizing a pair of electrodes with recognition reagents (the 'free-analyte' configuration) can generate a distinct tunneling signal when an analyte molecule is trapped in the gap. This opens up a new interface between chemistry and electronics with immediate implications for rapid sequencing of single DNA molecules.
机译:现在可以使用化学功能化的电极可靠地询问隧道结中的单个分子。监测与一个电极结合的配体与与第二电极结合的靶标之间的随机键波动(“束缚分子对”构型),可以洞察单个分子对水平上分子间键合的性质,并定义可复制的隧道数据。仿真表明,在大电流情况下,隧道间隙存在不稳定性,这会导致触点数量众多,并在测量电流中产生相应的扩展。在小电流(即大间隙)下,间隙是稳定的,当分析物分子被捕获在间隙中时,用识别试剂(``自由分析物''配置)对一对电极进行功能化可以产生独特的隧穿信号。这在化学和电子学之间开辟了一个新的界面,对单个DNA分子的快速测序具有直接意义。

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