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Probing complex stacking in a layered material via electron-nuclear quadrupolar coupling

  • Li Cheng
  • , Linpeng Nie
  • , Xuanyu Long
  • , Li Liang
  • , Dan Zhao
  • , Jian Li
  • , Zheng Liu
  • , Tao Wu
  • , Xianhui Chen
  • , Wenhui Duan
  • , Xiaolong Zou
  • Tsinghua University
  • University of Science and Technology of China
  • CAS - Technology and Engineering Center for Space Utilization
  • Frontier Science Center for Quantum Information
  • Collaborative Innovation Center of Quantum Matter

科研成果: 期刊稿件文章同行评审

摘要

For layered materials, the interlayer stacking is a critical degree of freedom tuning electronic properties, while its microscopic characterization faces great challenges. The transition-metal dichalcogenide 1T-TaS2 represents a novel example, in which the stacking pattern is not only enriched by the spontaneous occurrence of the intralayer charge density wave, but also recognized as a key to understand the nature of the low-temperature insulating phase. We exploit the S33 nuclei in a 1T-TaS2 single crystal as sensitive probes of the local stacking pattern via quadrupolar coupling to the electron density distribution nearby, by combining nuclear magnetic resonance (NMR) measurements with the state-of-the-art first-principles electric-field gradient calculations. The applicability of our proposal is analyzed through temperature, magnetic-field, and angle-dependent NMR spectra. Systematic simulations of a single 1T-TaS2 layer, bilayers with different stacking patterns, and typical stacking orders in three-dimensional (3D) structures unravel distinct NMR characteristics. Particularly, one 3D structure achieves a quantitative agreement with the experimental spectrum, which clearly rationalizes the coexistence of two types of interfacial environments. Our method may find general applications in the studies of layered materials.

源语言英语
文章编号L091001
期刊Physical Review Materials
7
9
DOI
出版状态已出版 - 9月 2023
已对外发布

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