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  5. Strain-mediated high conductivity in ultrathin antiferromagnetic metallic nitrides

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en
2020

Strain-mediated high conductivity in ultrathin antiferromagnetic metallic nitrides

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en
2020
DOI: 10.48550/arxiv.2010.09554arxiv.org/abs/2010.09554

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Lin Gu
Lin Gu

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Qiao Jin
Cheng Hu
Zhiwen Wang
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Abstract

Strain engineering provides the ability to control the ground states and associated phase transition in the epitaxial films. However, the systematic study of intrinsic characters and their strain dependency in transition-metal nitrides remains challenging due to the difficulty in fabricating the stoichiometric and high-quality films. Here we report the observation of electronic state transition in highly crystalline antiferromagnetic CrN films with strain and reduced dimensionality. Shrinking the film thickness to a critical value of ~ 30 unit cells, a profound conductivity reduction accompanied by unexpected volume expansion is observed in CrN films. The electrical conductivity is observed surprisingly when the CrN layer as thin as single unit cell thick, which is far below the critical thickness of most metallic films. We found that the metallicity of an ultrathin CrN film recovers from an insulating behavior upon the removal of as-grown strain by fabrication of first-ever freestanding nitride films. Both first-principles calculations and linear dichroism measurements reveal that the strain-mediated orbital splitting effectively customizes the relatively small bandgap at the Fermi level, leading to exotic phase transition in CrN. The ability to achieve highly conductive nitride ultrathin films by harness strain-controlling over competing phases can be used for utilizing their exceptional characteristics.

How to cite this publication

Qiao Jin, Cheng Hu, Zhiwen Wang, Qinghua Zhang, Shan Lin, Manuel A. Roldán, Jiali Zhao, Jiaou Wang, Shuang Chen, Meng He, Chen Ge, Can Wang, Hui‐bin Lu, Haizhong Guo, Lin Gu, Xin Tong, Tao Zhu, Shanmin Wang, Hongxin Yang, Kuijuan Jin, Er‐Jia Guo (2020). Strain-mediated high conductivity in ultrathin antiferromagnetic metallic nitrides. , DOI: https://doi.org/10.48550/arxiv.2010.09554.

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Publication Details

Type

Preprint

Year

2020

Authors

21

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.48550/arxiv.2010.09554

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