Anisotropic microwave response in Cr1∕3TaS2 hosting chiral magnetic soliton

Author:

Liu Wei1ORCID,Meng Fanying23,Rahman Azizur3ORCID,Li Jingxin24ORCID,Fan Jiyu5ORCID,Ma Chunlan6ORCID,Ge Min7ORCID,Pi Li247,Zhang Lei24ORCID,Zhang Yuheng247

Affiliation:

1. Institutes of Physical Science and Information Technology, Anhui University 1 , Hefei 230601, China

2. Anhui Key Laboratory of Condensed Matter Physics at Extreme Conditions, High Magnetic Field Laboratory, Hefei Institutes of Physical Science, Chinese Academy of Sciences 2 , Hefei 230031, China

3. University of Science and Technology of China 3 , Hefei 230026, China

4. The High Magnetic Field Laboratory of Anhui Province 4 , Hefei 230031, China

5. Department of Applied Physics, Nanjing University of Aeronautics and Astronautics 5 , Nanjing 210016, China

6. Jiangsu Key Laboratory of Micro and Nano Heat Fluid Flow Technology and Energy Application, School of Physical Science and Technology, Suzhou University of Science and Technology 6 , Suzhou 215009, China

7. Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China 7 , Hefei 230026, China

Abstract

Chromium-intercalated hexagonal Cr1∕3TaS2 possesses exotic properties, such as high-temperature magnetic soliton, crossover of critical behavior, and nontrivial magnetism. In this study, we employ the electron spin resonance (ESR) technique to modulate and study the chiral magnetic soliton lattice (CSL) in Cr1∕3TaS2 using microwave at X-band. The experimental results show that Cr1∕3TaS2 has a particularly strong microwave response when H⊥c but very weak feedback when H//c, revealing an anisotropic microwave response. When H⊥c, the resonance peak at lower fields results from the surface barrier induced by the competition between Dzyaloshinsky–Moriya interaction, Zeeman energy, and exchange energy. The dominant resonance is caused by the ferromagnetic mode with the twisted region as the boundary condition, which transforms into a paramagnetic resonance above the phase transition temperature (TC). Furthermore, an unusual temperature dependence of ESR spectra is revealed. The crystalline electric field (CEF) excitation owing to large strong spin–orbit coupling results in the widening of the ESR linewidth above TC. Furthermore, an abrupt shift in the resonance field Hr2 and ESR linewidth ΔHPP2 is observed around TC, which is attributed to a sudden change in spin-exchange interactions and magnetic anisotropy around TC, as Cr1∕3TaS2 was previously observed for spin interaction transition from strong anisotropic 3D-Ising type to isotropic 3D-Heisenberg magnetic interaction below TC. This work demonstrates that the ESR can detect the CSL state and investigate materials with nontrivial magnetism.

Funder

National Natural Science Foundation of China

Alliance of International Science Organizations

Collaborative Innovation Program of Hefei Science Center

Anhui University Scientific Research Startup Fund

University Natural Science Research Project of Anhui Province

Natural Science Foundation of Anhui Province

Systematic Fundamental Research Program Leveraging Major Scientific and Technological Infrastructure, Chinese Academy of Sciences

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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