Exotic vortex states at high magnetic fields in a quasi-two-dimensional FeSe-based superconductor

Fuente: arXiv
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Main Authors: Li, Xuyang, Li, Jian, Liu, Kai, Cai, Jiaqiang, Li, Shunjiao, Kang, Baolei, Shi, Mengzhu, Zhao, Dan, Xi, Chuanying, Zhang, Jinglei, Wu, Tao, Chen, Xianhui
Format: Preprint
Published: 2026
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author Li, Xuyang
Li, Jian
Liu, Kai
Cai, Jiaqiang
Li, Shunjiao
Kang, Baolei
Shi, Mengzhu
Zhao, Dan
Xi, Chuanying
Zhang, Jinglei
Wu, Tao
Chen, Xianhui
author_facet Li, Xuyang
Li, Jian
Liu, Kai
Cai, Jiaqiang
Li, Shunjiao
Kang, Baolei
Shi, Mengzhu
Zhao, Dan
Xi, Chuanying
Zhang, Jinglei
Wu, Tao
Chen, Xianhui
contents Owing to strong electronic correlations, high-temperature superconductivity always exhibits intricate intertwinement with various competing electronic orders in phase diagrams, such as spin/charge density waves (S/CDWs). In cuprate superconductors,the intertwinement of superconductivity and CDW order could strongly affect the fundamental properties of superconductivity, such as the critical temperature(Tc) and critical magnetic field(Hc). Recent high-field transport measurements indicate that when quantum fluctuations become important at low temperatures and high magnetic fields, the CDW order also reshapes the vortex states, which leads to fragile superconductivity with extremely low critical current(Jc). Here, by performing comprehensive high-field transport measurements, the H-T phase diagram of vortex states is mapped to H = 33 T in a quasi-two-dimensional FeSe-based superconductor (TBA+)xFeSe with a zero-resistivity transition temperature above 40 K. Our results indicate that (TBA+)xFeSe is an extremely type II superconductor with significant thermal fluctuations.At low temperatures, high magnetic fields cause the vortex solid state to exhibit similar current-dependent zero-resistance behavior as the fragile superconductivity in cuprate superconductors with CDW order. When the vortex solid state is melted with increasing temperature, a superconducting regime with vortex-like phase fluctuations emerges as an intermediate state, which features finite longitudinal resistance and vanishing Hall resistance. At higher temperatures, a vortex liquid state with finite Hall resistance eventually appears due to thermal fluctuations. All these observations suggest exotic vortex states beyond the classical paradigm of vortex matter.
format Preprint
id arxiv_https___arxiv_org_abs_2601_18531
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Exotic vortex states at high magnetic fields in a quasi-two-dimensional FeSe-based superconductor
Li, Xuyang
Li, Jian
Liu, Kai
Cai, Jiaqiang
Li, Shunjiao
Kang, Baolei
Shi, Mengzhu
Zhao, Dan
Xi, Chuanying
Zhang, Jinglei
Wu, Tao
Chen, Xianhui
Superconductivity
Strongly Correlated Electrons
Owing to strong electronic correlations, high-temperature superconductivity always exhibits intricate intertwinement with various competing electronic orders in phase diagrams, such as spin/charge density waves (S/CDWs). In cuprate superconductors,the intertwinement of superconductivity and CDW order could strongly affect the fundamental properties of superconductivity, such as the critical temperature(Tc) and critical magnetic field(Hc). Recent high-field transport measurements indicate that when quantum fluctuations become important at low temperatures and high magnetic fields, the CDW order also reshapes the vortex states, which leads to fragile superconductivity with extremely low critical current(Jc). Here, by performing comprehensive high-field transport measurements, the H-T phase diagram of vortex states is mapped to H = 33 T in a quasi-two-dimensional FeSe-based superconductor (TBA+)xFeSe with a zero-resistivity transition temperature above 40 K. Our results indicate that (TBA+)xFeSe is an extremely type II superconductor with significant thermal fluctuations.At low temperatures, high magnetic fields cause the vortex solid state to exhibit similar current-dependent zero-resistance behavior as the fragile superconductivity in cuprate superconductors with CDW order. When the vortex solid state is melted with increasing temperature, a superconducting regime with vortex-like phase fluctuations emerges as an intermediate state, which features finite longitudinal resistance and vanishing Hall resistance. At higher temperatures, a vortex liquid state with finite Hall resistance eventually appears due to thermal fluctuations. All these observations suggest exotic vortex states beyond the classical paradigm of vortex matter.
title Exotic vortex states at high magnetic fields in a quasi-two-dimensional FeSe-based superconductor
topic Superconductivity
Strongly Correlated Electrons
url https://arxiv.org/abs/2601.18531