Novel Relationship between Antiferromagnetic Spin Fluctuations and Superconductivity in FeSe<sub>0.47</sub>Te<sub>0.53</sub> under Pressure
ORAL
Abstract
The relationship between antiferromagnetic spin fluctuations, nematic fluctuations, and superconductivity has been central to understanding the pairing mechanism in iron-based superconductors. Iron chalcogenides, which hold the simplest crystal structure in iron-based superconductors, provide a good platform to investigate the relationship. Here, we report 77Se and 125Te nuclear magnetic resonance studies of FeSe0.47Te0.53, which is close to a pure nematic quantum critical point. Both the superconducting critical temperature and antiferromagnetic spin fluctuations were found to be enhanced under pressure, which suggests a correlation between superconductivity and antiferromagnetic spin fluctuations in FeSe0.47Te0.53. However, the contribution of antiferromagnetic spin fluctuations to superconductivity in FeSe0.47Te0.53 is much less compared to that in FeSe1−xSx [1]. Since superconductivity in FeSe1−xSx was widely believed to be mediated by antiferromagnetic spin fluctuations, the contrasting behavior of FeSe0.47Te0.53 should come from a different origin. Our study indicates that instead of antiferromagnetic spin fluctuations, nematic fluctuations play a dominant role in the superconductivity in FeSe1−xTex.
[1] K. Rana, D. V. Ambika, S. L. Bud'ko, A. E. Böhmer, P. C. Canfield, and Y. Furukawa, Phys. Rev. B 107, 134507 (2023).
[1] K. Rana, D. V. Ambika, S. L. Bud'ko, A. E. Böhmer, P. C. Canfield, and Y. Furukawa, Phys. Rev. B 107, 134507 (2023).
*The research was supported by the U.S. Department of Energy under Contract No. DE-AC02-07CH11358.
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Presenters
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Qing-Ping Ding
- Ames National Laboratory
- Ames National Laboratory, U.S.DOE