Nearfield Trapping Increases Lifetime of Single-Molecule Junction by One Order of Magnitude

Albert C. Aragonès, Katrin F. Domke
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引用次数: 7

Abstract

Progress in molecular electronics (ME) is largely based on improved understanding of the properties of single molecules (SM) trapped for seconds or longer to enable their detailed characterization. We present a plasmon-supported break-junction (PBJ) platform to significantly increase the lifetime of SM junctions of 1,4-benzendithiol (BDT) without the need for chemical modification of molecule or electrode. Moderate far-field power densities of ca. 11 mW/µm2 lead to a >10-fold increase in minimum lifetime compared to laser-OFF conditions. The nearfield trapping efficiency is twice as large for bridge-site contact compared to hollow-site geometry, which can be attributed to the difference in polarizability. Current measurements and tip-enhanced Raman spectra confirm that native structure and contact geometry of BDT are preserved during the PBJ experiment. By providing a non-invasive pathway to increase short lifetimes of SM junctions, PBJ is a valuable approach for ME, paving the way for improved SM sensing and recognition platforms.
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近场捕获使单分子结的寿命增加一个数量级
分子电子学(ME)的进步很大程度上是基于对单分子(SM)被捕获数秒或更长时间的特性的更好理解,从而能够对其进行详细表征。我们提出了一种等离子体支持的断结(PBJ)平台,可以显着提高1,4-苯二硫醇(BDT)的SM结的寿命,而无需对分子或电极进行化学修饰。与激光关闭条件相比,约11 mW/µm2的中等远场功率密度导致最小寿命增加>10倍。桥点接触的近场捕获效率是空心点几何结构的两倍,这可以归因于极化率的差异。目前的测量和尖端增强拉曼光谱证实,在PBJ实验中,BDT的原始结构和接触几何形状被保留了下来。通过提供一种非侵入性途径来增加SM连接的短寿命,PBJ是一种有价值的方法,为改进SM感知和识别平台铺平了道路。
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