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首页> 外文期刊>Nature Communications >Quantum dissipation driven by electron transfer within a single molecule investigated with atomic force microscopy
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Quantum dissipation driven by electron transfer within a single molecule investigated with atomic force microscopy

机译:用原子力显微镜检查的单个分子内电子转移驱动的量子耗散

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Intramolecular charge transfer processes play an important role in many biological, chemical and physical processes including photosynthesis, redox chemical reactions and electron transfer in molecular electronics. These charge transfer processes are frequently influenced by the dynamics of their molecular or atomic environments, and they are accompanied with energy dissipation into this environment. The detailed understanding of such processes is fundamental for their control and possible exploitation in future technological applications. Most of the experimental studies of the intramolecular charge transfer processes so far have been carried out using time-resolved optical spectroscopies on large molecular ensembles. This hampers detailed understanding of the charge transfer on the single molecular level. Here we build upon the recent progress in scanning probe microscopy, and demonstrate the control of mixed valence state. We report observation of single electron transfer between two ferrocene redox centers within a single molecule and the detection of energy dissipation associated with the single electron transfer.
机译:分子内电荷转移过程在许多生物学,化学和物理过程中起重要作用,包括光合作用,氧化还原化学反应和分子电子中的电子转移。这些电荷转移过程经常受其分子或原子环境的动态影响,它们伴随着这种环境的能量耗散。对这些过程的详细了解是他们对未来技术应用中的控制和可能开采的基础。大多数对分子内电荷转移过程的实验研究到目前为止,使用时间分辨的光谱在大分子集合上进行。这种妨碍了对单分子水平的电荷转移的详细了解。在这里,我们建立了扫描探针显微镜的最近进展,并证明了混合价状态的控制。我们在单个分子内报告了在两个二茂铁氧化还原中心之间的单电子转移观察,并检测与单电子传递相关的能量耗散。

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