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黑磷的复兴。

The renaissance of black phosphorus.

作者信息

Ling Xi, Wang Han, Huang Shengxi, Xia Fengnian, Dresselhaus Mildred S

机构信息

Department of Electrical Engineering and Computer Science and.

Ming Hsieh Department of Electrical Engineering, University of Southern California, Los Angeles, CA 90089; and

出版信息

Proc Natl Acad Sci U S A. 2015 Apr 14;112(15):4523-30. doi: 10.1073/pnas.1416581112. Epub 2015 Mar 27.

Abstract

One hundred years after its first successful synthesis in the bulk form in 1914, black phosphorus (black P) was recently rediscovered from the perspective of a 2D layered material, attracting tremendous interest from condensed matter physicists, chemists, semiconductor device engineers, and material scientists. Similar to graphite and transition metal dichalcogenides (TMDs), black P has a layered structure but with a unique puckered single-layer geometry. Because the direct electronic band gap of thin film black P can be varied from 0.3 eV to around 2 eV, depending on its film thickness, and because of its high carrier mobility and anisotropic in-plane properties, black P is promising for novel applications in nanoelectronics and nanophotonics different from graphene and TMDs. Black P as a nanomaterial has already attracted much attention from researchers within the past year. Here, we offer our opinions on this emerging material with the goal of motivating and inspiring fellow researchers in the 2D materials community and the broad readership of PNAS to discuss and contribute to this exciting new field. We also give our perspectives on future 2D and thin film black P research directions, aiming to assist researchers coming from a variety of disciplines who are desirous of working in this exciting research field.

摘要

1914年首次成功合成块状黑磷(black P)后的一百年,黑磷最近从二维层状材料的角度被重新发现,引起了凝聚态物理学家、化学家、半导体器件工程师和材料科学家的极大兴趣。与石墨和过渡金属二硫属化物(TMDs)类似,黑磷具有层状结构,但具有独特的褶皱单层几何形状。由于薄膜黑磷的直接电子带隙可根据其膜厚度在0.3 eV至约2 eV之间变化,并且由于其高载流子迁移率和面内各向异性特性,黑磷在纳米电子学和纳米光子学中的新型应用方面比石墨烯和TMDs更具前景。作为一种纳米材料,黑磷在过去一年已经引起了研究人员的广泛关注。在此,我们对这种新兴材料发表看法,旨在激励二维材料领域的研究人员以及《美国国家科学院院刊》的广大读者讨论并投身于这个令人兴奋的新领域。我们还对未来二维和薄膜黑磷的研究方向给出观点,旨在帮助来自各个学科、渴望在这个令人兴奋的研究领域开展工作的研究人员。

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