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具有混合金|石墨烯接触的单分子电子学的电化学门控

Electrochemical gating for single-molecule electronics with hybrid Au|graphene contacts.

作者信息

Tao Shuhui, Zhang Qian, Vezzoli Andrea, Zhao Cezhou, Zhao Chun, Higgins Simon J, Smogunov Alexander, Dappe Yannick J, Nichols Richard J, Yang Li

机构信息

Department of Chemistry, Xi'an-Jiaotong Liverpool University, Suzhou, 215123, China.

Department of Chemistry, University of Liverpool, Liverpool, L69 7ZD, UK.

出版信息

Phys Chem Chem Phys. 2022 Mar 16;24(11):6836-6844. doi: 10.1039/d1cp05486d.

Abstract

The single-molecular conductance of a redox active viologen molecular bridge between Au|graphene electrodes has been studied in an electrochemical gating configuration in an ionic liquid medium. A clear "off-on-off" conductance switching behaviour has been achieved through gating of the redox state when the electrochemical potential is swept. The Au|viologen|graphene junctions show single-molecule conductance maxima centred close to the equilibrium redox potentials for both reduction steps. The peak conductance of Au|viologen|graphene junctions during the first reduction is significantly higher than that of previously measured Au|viologen|Au junctions. This shows that even though the central viologen moiety is not directly linked to the enclosing electrodes, substituting one gold contact for a graphene one nevertheless has a significant impact on junction conductance values. The experimental data was compared against two theoretical models, namely a phase coherent tunnelling and an incoherent "hopping" model. The former is a simple gating monoelectronic model within density functional theory (DFT) which discloses the charge state evolution of the molecule with electrode potential. The latter model is the collective Kuznetsov Ulstrup model for 2-step sequential charge transport through the redox centre in the adiabatic limit. The comparison of both models to the experimental data is discussed for the first time. This work opens perspectives for graphene-based molecular transistors with more effective gating and fundamental understanding of electrochemical electron transfer at the single molecular level.

摘要

在离子液体介质的电化学门控配置中,研究了金|石墨烯电极之间氧化还原活性紫精分子桥的单分子电导。当扫描电化学势时,通过氧化还原状态的门控实现了清晰的“关-开-关”电导切换行为。金|紫精|石墨烯结的单分子电导最大值集中在两个还原步骤的平衡氧化还原电位附近。第一次还原过程中,金|紫精|石墨烯结的峰值电导明显高于先前测量的金|紫精|金结。这表明,即使中心紫精部分没有直接连接到包围电极上,但用石墨烯接触取代一个金接触对结电导值仍有显著影响。将实验数据与两个理论模型进行了比较,即相位相干隧穿模型和非相干“跳跃”模型。前者是密度泛函理论(DFT)中的一个简单门控单电子模型,它揭示了分子电荷状态随电极电位的演变。后者模型是绝热极限下通过氧化还原中心进行两步连续电荷传输的集体库兹涅佐夫-乌尔斯特鲁普模型。首次讨论了这两个模型与实验数据的比较。这项工作为具有更有效门控的基于石墨烯的分子晶体管以及在单分子水平上对电化学电子转移的基本理解开辟了前景。

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