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走向分子尺度的性能修正。

Towards Rectifying Performance at the Molecular Scale.

机构信息

Shandong Province Key Laboratory of Medical Physics and Image Processing Technology, School of Physics and Electronics & Institute of Materials and Clean Energy, Shandong Normal University, Jinan, 250358, China.

School of Physics and Technology, University of Jinan, Jinan, 250022, China.

出版信息

Top Curr Chem (Cham). 2017 Oct 24;375(6):85. doi: 10.1007/s41061-017-0170-3.

Abstract

Molecular diode, proposed by Mark Ratner and Arieh Aviram in 1974, is the first single-molecule device investigated in molecular electronics. As a fundamental device in an electric circuit, molecular diode has attracted an enduring and extensive focus during the past decades. In this review, the theoretical and experimental progresses of both charge-based and spin-based molecular diodes are summarized. For the charge-based molecular diodes, the rectifying properties originated from asymmetric molecules including D-σ-A, D-π-A, D-A, and σ-π type compounds, asymmetric electrodes, asymmetric nanoribbons, and their combination are analyzed. Correspondingly, the rectification mechanisms are discussed in detail. Furthermore, a series of strategies for modulating rectification performance is figured out. Discussion on concept of molecular spin diode is also involved based on a magnetic co-oligomer. At the same time, the intrinsic mechanism as well as the modulation of the spin-current rectification performance is introduced. Finally, several crucial issues that need to be addressed in the future are given.

摘要

分子二极管由马克·拉特纳(Mark Ratner)和阿里埃勒·阿维瑞姆(Arieh Aviram)于 1974 年提出,是分子电子学中研究的第一个单分子器件。作为电路中的基本器件,在过去的几十年中,分子二极管引起了持久而广泛的关注。在这篇综述中,总结了基于电荷和基于自旋的分子二极管的理论和实验进展。对于基于电荷的分子二极管,分析了源于不对称分子的整流特性,包括 D-σ-A、D-π-A、D-A 和 σ-π 型化合物、不对称电极、不对称纳米带及其组合。相应地,详细讨论了整流机制。此外,还提出了一系列调节整流性能的策略。还基于磁共低聚物讨论了分子自旋二极管的概念。同时,介绍了自旋电流整流性能的内在机制及其调制。最后,给出了未来需要解决的几个关键问题。

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