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针对磁性二维VOCl单层的化学剥离

Chemical Exfoliation toward Magnetic 2D VOCl Monolayers.

作者信息

Villalpando Graciela, Ferrenti Austin M, Singha Ratnadwip, Song Xiaoyu, Cheng Guangming, Yao Nan, Schoop Leslie M

机构信息

Department of Chemistry, Princeton University, Princeton, New Jersey 08544, United States.

Princeton Institute for Science and Technology of Materials, Princeton, New Jersey 08544, United States.

出版信息

ACS Nano. 2022 Sep 27;16(9):13814-13820. doi: 10.1021/acsnano.2c01858. Epub 2022 Aug 17.

DOI:10.1021/acsnano.2c01858
PMID:35977071
Abstract

The diversification of magnetic two-dimensional (2D) materials holds the key to the further development of advanced technologies, such as spintronic devices and efficient data storage. However, the search for intrinsic magnetism down to the 2D limit is severely limited by the ability to reliably exfoliate large, air-stable nanosheets. Chemical exfoliation, a relatively underutilized method for delamination, offers many advantages, including a high degree of adaptability and higher yields of uniformly exfoliated materials. van der Waals (vdW) materials, in particular the family of transition-metal oxyhalides, are ideal candidates for chemical exfoliation due to their large interlayer spacing and the wide variety of interesting magnetic properties they exhibit. In this study, we employ a chemical exfoliation method to delaminate the layered antiferromagnet vanadium oxychloride (VOCl) down to the monolayer limit. The resulting nansoheets have lateral sizes of up to 20 μm, are air-stable, and can be easily isolated. Magnetic characterization was performed throughout the exfoliation process, tracking the changes in magnetic behavior among bulk VOCl, its lithiated intercalate, and the restacked nanosheet pellet. The results from this work demonstrate the potential of chemical exfoliation, along with illustrating the effects of low dimensionality on magnetic properties.

摘要

磁性二维(2D)材料的多样化是自旋电子器件和高效数据存储等先进技术进一步发展的关键。然而,由于难以可靠地剥离出大尺寸、空气稳定的纳米片,探索二维极限下的本征磁性受到了严重限制。化学剥离是一种相对未被充分利用的分层方法,具有许多优点,包括高度的适应性和更高的均匀剥离材料产率。范德华(vdW)材料,特别是过渡金属卤氧化物家族,因其较大的层间距和所展现出的各种有趣磁性,是化学剥离的理想候选材料。在本研究中,我们采用化学剥离方法将层状反铁磁体氧氯化钒(VOCl)剥离至单层极限。所得纳米片的横向尺寸可达20μm,具有空气稳定性,且易于分离。在整个剥离过程中进行了磁性表征,追踪了块状VOCl、其锂化插层物和重新堆叠的纳米片颗粒之间磁性行为的变化。这项工作的结果证明了化学剥离的潜力,同时也阐明了低维结构对磁性的影响。

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