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通过过渡电压光谱研究分子电子结的电荷传输特性。

Charge Transport Characteristics of Molecular Electronic Junctions Studied by Transition Voltage Spectroscopy.

作者信息

Kim Youngsang, Im Kyungjin, Song Hyunwook

机构信息

Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

Department of Applied Physics, Kyung Hee University, Yongin 17104, Korea.

出版信息

Materials (Basel). 2022 Jan 20;15(3):774. doi: 10.3390/ma15030774.

Abstract

The field of molecular electronics is prompted by tremendous opportunities for using a single-molecule and molecular monolayers as active components in integrated circuits. Until now, a wide range of molecular devices exhibiting characteristic functions, such as diodes, transistors, switches, and memory, have been demonstrated. However, a full understanding of the crucial factors that affect charge transport through molecular electronic junctions should yet be accomplished. Remarkably, recent advances in transition voltage spectroscopy (TVS) elucidate that it can provide key quantities for probing the transport characteristics of the junctions, including, for example, the position of the frontier molecular orbital energy relative to the electrode Fermi level and the strength of the molecule-electrode interactions. These parameters are known to be highly associated with charge transport behaviors in molecular systems and can then be used in the design of molecule-based devices with rationally tuned electronic properties. This article highlights the fundamental principle of TVS and then demonstrates its major applications to study the charge transport properties of molecular electronic junctions.

摘要

分子电子学领域受到将单分子和分子单层用作集成电路有源组件的巨大机遇的推动。到目前为止,已经展示了各种各样具有特征功能的分子器件,如二极管、晶体管、开关和存储器。然而,对影响电荷通过分子电子结传输的关键因素仍需全面了解。值得注意的是,过渡电压光谱(TVS)的最新进展表明,它可以提供用于探测结传输特性的关键量,例如,前沿分子轨道能量相对于电极费米能级的位置以及分子与电极相互作用的强度。已知这些参数与分子系统中的电荷传输行为高度相关,进而可用于设计具有合理调谐电子特性的分子基器件。本文重点介绍了TVS的基本原理,然后展示了其在研究分子电子结电荷传输特性方面的主要应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a804/8836750/02010e097bc8/materials-15-00774-g001.jpg

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