Development of Single-Molecule Science

M. Taniguchi
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Abstract

We reviewed the single-molecule science based on single-molecule measurements using tunneling current and ionic current as probes. Single-molecule measurements using tunneling currents can determine the number of molecules connected to a nanogap electrode. In addition, single-molecule measurements enable measuring the molecular vibration, local temperature, thermoelectric power, and electrode-molecule binding energy of a single molecule connected between electrodes. In addition, as a physical quantity, the phase information of the frontier molecular orbital of single molecules is measured. On the other hand, using an ionic current, single-molecule measurements enable highly accurate identification of a bacterium or virus that passes through a nanopore having a through-hole with a diameter of several μ m or less. Nanopores are also a stage for elucidating the flow dynamics of a single substance transported in a liquid confined in a nanospace. Single-molecule science, which is growing as a fundamental discipline, is advancing to applied research targeting biomolecules. Furthermore, the fusion of single-molecule measurements and artificial intelligence will enable data analysis methods that are different from conventional ones. It is also becoming possible to investigate the properties of a single molecule rather than the statistical average molecular behavior.
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单分子科学的发展
本文综述了以隧道电流和离子电流为探针的单分子测量为基础的单分子科学。使用隧道电流的单分子测量可以确定连接到纳米间隙电极的分子数量。此外,单分子测量可以测量分子振动、局部温度、热电功率和连接在电极之间的单个分子的电极-分子结合能。此外,作为物理量,测量了单分子前沿分子轨道的相信息。另一方面,使用离子电流,单分子测量可以高度准确地识别通过具有直径为几微米或更小的通孔的纳米孔的细菌或病毒。纳米孔也是解释单一物质在纳米空间内液体中传输的流动动力学的一个阶段。单分子科学作为一门基础学科正在向以生物分子为目标的应用研究方向发展。此外,单分子测量和人工智能的融合将使数据分析方法与传统方法不同。研究单个分子的性质而不是统计平均分子行为也成为可能。
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