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自旋电子器件中的分子化合物:化学与物理的复杂结合

Molecular Compounds in Spintronic Devices: An Intricate Marriage of Chemistry and Physics.

作者信息

Zlobin Ivan S, Nelyubina Yulia V, Novikov Valentin V

机构信息

A.N. Nesmeyanov Institute of Organoelement Compounds of Russian Academy of Sciences (INEOS RAS), Vavilova Str. 28, Moscow 119991, Russia.

Moscow Institute of Physics and Technology (National Research University), Institutskiy Per. 9, Dolgoprudny, Moscow Region 141700, Russia.

出版信息

Inorg Chem. 2022 Aug 22;61(33):12919-12930. doi: 10.1021/acs.inorgchem.2c00859. Epub 2022 Aug 5.

Abstract

Spintronics, a flourishing new field of microelectronics, uses the electron spin for reading and writing information in modern computers and other spintronic devices with a low power consumption and high reliability. In a quest to increase the productivity of such devices, the use of molecular materials as a spacer layer allowed them to perform equally well or even better than conventional all-inorganic heterostructures from metals, alloys, or inorganic semiconductors. In this review, we survey various classes of chemical compounds that have already been tested for this purpose─from organic compounds and coordination complexes to organic-inorganic hybrid materials─since the creation of the first molecule-based spintronic device in 2002. Although each class has its advantages, drawbacks, and applications in molecular spintronics, together they allowed nonchemists to gain insights into spin-related effects and to propose new concepts in the design and fabrication of highly efficient spintronic devices. Other molecular compounds that chemistry could offer in great numbers may soon emerge as suitable spacers or even electrodes in flexible magnetic field sensors, nonvolatile memories, and multifunctional spintronic devices.

摘要

自旋电子学是微电子学中一个蓬勃发展的新领域,它利用电子自旋在现代计算机和其他自旋电子器件中读写信息,具有低功耗和高可靠性的特点。为了提高此类器件的生产率,使用分子材料作为间隔层使其性能与由金属、合金或无机半导体构成的传统全无机异质结构相当,甚至更优。在本综述中,我们考察了自2002年首个基于分子的自旋电子器件问世以来,已为此目的进行测试的各类化合物——从有机化合物、配位络合物到有机-无机杂化材料。尽管每一类化合物在分子自旋电子学中都有其优点、缺点和应用,但它们共同使非化学专业人员能够深入了解自旋相关效应,并在高效自旋电子器件的设计和制造中提出新概念。化学领域大量提供的其他分子化合物可能很快会成为柔性磁场传感器、非易失性存储器和多功能自旋电子器件中合适的间隔层甚至电极。

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