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首页> 外文期刊>Nature nanotechnology >Transition from direct to inverted charge transport Marcus regions in molecular junctions via molecular orbital gating
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Transition from direct to inverted charge transport Marcus regions in molecular junctions via molecular orbital gating

机译:通过分子轨道门控从分子交叉点直接转换到倒置电荷转运Marcus区

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摘要

Solid-state molecular tunnel junctions are often assumed to operate in the Landauer regime, which describes essentially activationless coherent tunnelling processes. In solution, on the other hand, charge transfer is described by Marcus theory, which accounts for thermally activated processes. In practice, however, thermally activated transport phenomena are frequently observed also in solid-state molecular junctions but remain poorly understood. Here, we show experimentally the transition from the Marcus to the inverted Marcus region in a solid-state molecular tunnel junction by means of intra-molecular orbital gating that can be tuned via the chemical structure of the molecule and applied bias. In the inverted Marcus region, charge transport is incoherent, yet virtually independent of temperature. Our experimental results fit well to a theoretical model that combines Landauer and Marcus theories and may have implications for the interpretation of temperature-dependent charge transport measurements in molecular junctions.
机译:通常假设固态的分子隧道结在Landauer制度中运行,其描述基本上激活的相干隧穿工艺。另一方面,在解决方案中,Marcus理论描述了电荷转移,其考虑了热激活的过程。然而,在实践中,也经常在固态分子连接中观察到热活化的运输现象,但仍然仍然明白。在这里,我们通过分子轨道轨道术语通过分子轨道轨道栅格在实验中向倒置的Marcus区域的过渡显示在固态的分子隧道结中,可以通过分子的化学结构和施用偏压进行调节。在倒马斯地区,电荷运输不连贯,但实际上独立于温度。我们的实验结果适用于兰出兰德和马库斯理论的理论模型,并可能对分子交叉点的温度依赖性电荷输送测量进行解释。

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