Pressure-induced superconductivity in a three-dimensional topological material ZrTe 5

Three-dimensional (3D) Dirac semimetals have attracted a lot of advanced research recently on many exotic properties and their association with crystalline and electronic structures under extreme conditions. As one of the fundamental state parameters, high pressure is an effective, clean way to tune...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2016-03, Vol.113 (11), p.2904-2909
Hauptverfasser: Zhou, Yonghui, Wu, Juefei, Ning, Wei, Li, Nana, Du, Yongping, Chen, Xuliang, Zhang, Ranran, Chi, Zhenhua, Wang, Xuefei, Zhu, Xiangde, Lu, Pengchao, Ji, Cheng, Wan, Xiangang, Yang, Zhaorong, Sun, Jian, Yang, Wenge, Tian, Mingliang, Zhang, Yuheng, Mao, Ho-kwang
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Sprache:eng
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Zusammenfassung:Three-dimensional (3D) Dirac semimetals have attracted a lot of advanced research recently on many exotic properties and their association with crystalline and electronic structures under extreme conditions. As one of the fundamental state parameters, high pressure is an effective, clean way to tune lattice as well as electronic states, especially in quantum states, thus their electronic and magnetic properties. In this paper, by combining multiple experimental probes (synchrotron X-ray diffraction, low-temperature transport under magnetic field) and theoretical investigations, we discover the pressure-induced 3D Dirac semimetal to superconductor transition in ZrTe 5 . As a new type of topological materials, ZrTe 5 shows many exotic properties under extreme conditions. Using resistance and ac magnetic susceptibility measurements under high pressure, while the resistance anomaly near 128 K is completely suppressed at 6.2 GPa, a fully superconducting transition emerges. The superconducting transition temperature T c increases with applied pressure, and reaches a maximum of 4.0 K at 14.6 GPa, followed by a slight drop but remaining almost constant value up to 68.5 GPa. At pressures above 21.2 GPa, a second superconducting phase with the maximum T c of about 6.0 K appears and coexists with the original one to the maximum pressure studied in this work. In situ high-pressure synchrotron X-ray diffraction and Raman spectroscopy combined with theoretical calculations indicate the observed two-stage superconducting behavior is correlated to the structural phase transition from ambient Cmcm phase to high-pressure C 2/ m phase around 6 GPa, and to a mixture of two high-pressure phases of C 2/ m and P -1 above 20 GPa. The combination of structure, transport measurement, and theoretical calculations enable a complete understanding of the emerging exotic properties in 3D topological materials under extreme environments.
ISSN:0027-8424
1091-6490
DOI:10.1073/pnas.1601262113