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功能型氧化还原活性分子隧道结。

Functional Redox-Active Molecular Tunnel Junctions.

机构信息

Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore, 117543, Singapore.

Centre for Advanced 2D Materials and Graphene Research Centre, National University of Singapore, 6 Science Drive 2, Singapore, 117546, Singapore.

出版信息

Chem Asian J. 2020 Nov 16;15(22):3752-3770. doi: 10.1002/asia.202000932. Epub 2020 Oct 14.

Abstract

Redox-active molecular junctions have attracted considerable attention because redox-active molecules provide accessible energy levels enabling electronic function at the molecular length scales, such as, rectification, conductance switching, or molecular transistors. Unlike charge transfer in wet electrochemical environments, it is still challenging to understand how redox-processes proceed in solid-state molecular junctions which lack counterions and solvent molecules to stabilize the charge on the molecules. In this minireview, we first introduce molecular junctions based on redox-active molecules and discuss their properties from both a chemistry and nanoelectronics point of view, and then discuss briefly the mechanisms of charge transport in solid-state redox-junctions followed by examples where redox-molecules generate new electronic function. We conclude with challenges that need to be addressed and interesting future directions from a chemical engineering and molecular design perspectives.

摘要

氧化还原活性分子结引起了相当大的关注,因为氧化还原活性分子提供了易于接近的能级,使电子功能在分子长度尺度上得以实现,例如整流、电导开关或分子晶体管。与湿电化学环境中的电荷转移不同,要理解在缺乏抗衡离子和溶剂分子来稳定分子上电荷的固态分子结中,氧化还原过程如何进行仍然具有挑战性。在这篇综述中,我们首先介绍了基于氧化还原活性分子的分子结,并从化学和纳电子学的角度讨论了它们的性质,然后简要讨论了固态氧化还原结中电荷输运的机制,以及氧化还原分子产生新电子功能的例子。最后,我们从化学工程和分子设计的角度总结了需要解决的挑战和有趣的未来方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f167/7756406/1b9fafb59935/ASIA-15-3752-g003.jpg

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