A new quasi-one-dimensional compound Ba3TiTe5 and superconductivity induced by pressure

被引:0
作者
Jun Zhang
Yating Jia
Xiancheng Wang
Zhi Li
Lei Duan
Wenmin Li
Jianfa Zhao
Lipeng Cao
Guangyang Dai
Zheng Deng
Sijia Zhang
Shaomin Feng
Runze Yu
Qingqing Liu
Jiangping Hu
Jinlong Zhu
Changqing Jin
机构
[1] Chinese Academy of Sciences,Beijing National Laboratory for Condensed Matter Physics, Institute of Physics
[2] University of Chinese Academy of Sciences,School of Physics
[3] Center for High Pressure Science & Technology Advanced Research,College of Materials Science and Engineering
[4] Nanjing University of Science and Technology,Physics Department
[5] Southern University of Science and Technology,undefined
[6] Materials Research Lab at Songshan Lake,undefined
来源
NPG Asia Materials | 2019年 / 11卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
We report systematic studies of a new quasi-one-dimensional (quasi-1D) compound, Ba3TiTe5, and the high-pressure induced superconductivity therein. Ba3TiTe5 was synthesized at high pressure and high temperature. It crystallizes into a hexagonal structure (P63/mcm), which consists of infinite face-sharing octahedral TiTe6 chains and Te chains along the c axis, exhibiting a strong 1D characteristic structure. The first-principles calculations demonstrate that Ba3TiTe5 is a well-defined 1D conductor; thus, it can be considered a starting point to explore the exotic physics induced by pressure by enhancing the interchain hopping to move the 1D conductor to a high-dimensional metal. For Ba3TiTe5, high-pressure techniques were employed to study the emerging physics dependent on interchain hopping, such as the Umklapp scattering effect, spin/charge density wave (SDW/CDW), superconductivity and non-Fermi liquid behavior. Finally, a complete phase diagram was plotted. The superconductivity emerges at 8.8 GPa, near which the Umklapp gap is mostly suppressed. Tc is enhanced and reaches a maximum of ~6 K at ~36.7 GPa, where the SDW/CDW is completely suppressed, and a non-Fermi liquid behavior appears. Our results suggest that the appearance of superconductivity is associated with the fluctuation due to the suppression of the Umklapp gap and that the enhancement of the Tc is related to the fluctuation of the SDW/CDW.
引用
收藏
相关论文
共 50 条
[21]   Superconductivity without attraction in a quasi-one-dimensional metal [J].
Rozhkov, A. V. .
PHYSICAL REVIEW B, 2009, 79 (22)
[22]   PEIERLS INSTABILITY AND SUPERCONDUCTIVITY IN QUASI-ONE-DIMENSIONAL CONDUCTORS [J].
HOROVITZ, B .
PHYSICAL REVIEW B, 1977, 16 (09) :3943-3954
[23]   Robust Superconductivity in Quasi-one-dimensional Multiband Materials [J].
Saraiva, T. T. ;
Baturina, L. I. ;
Shanenko, A. A. .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2021, 12 (47) :11604-11608
[24]   EXCITONIC MECHANISM FOR SUPERCONDUCTIVITY IN A QUASI-ONE-DIMENSIONAL SYSTEM [J].
HIRSCH, JE ;
SCALAPINO, DJ .
PHYSICAL REVIEW B, 1985, 32 (01) :117-134
[25]   Novel type of pairing in quasi-one-dimensional superconductivity [J].
Fuseya, Y ;
Onishi, Y ;
Kohno, H ;
Miyake, K .
PHYSICA B-CONDENSED MATTER, 2002, 312 :36-38
[26]   Pressure-induced superconductivity in the quasi-one-dimensional organic conductor (TMTTF)2AsF6 [J].
Itoi, Miho ;
Kano, Mika ;
Kurita, Nobuyuki ;
Hedo, Masato ;
Uwatoko, Yoshiya ;
Nakamura, Toshikazu .
JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 2007, 76 (05)
[27]   Features of the conductivity of the quasi-one-dimensional compound TiS3 [J].
I. G. Gorlova ;
V. Ya. Pokrovskii ;
S. G. Zybtsev ;
A. N. Titov ;
V. N. Timofeev .
Journal of Experimental and Theoretical Physics, 2010, 111 :298-303
[28]   ELASTIC ANOMALIES IN THE QUASI-ONE-DIMENSIONAL COMPOUND CUGEO3 [J].
SAINTPAUL, M ;
MONCEAU, P ;
REVCOLEVSCHI, A .
SOLID STATE COMMUNICATIONS, 1995, 93 (01) :7-9
[29]   Features of the conductivity of the quasi-one-dimensional compound TiS3 [J].
Gorlova, I. G. ;
Pokrovskii, V. Ya. ;
Zybtsev, S. G. ;
Titov, A. N. ;
Timofeev, V. N. .
JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2010, 111 (02) :298-303
[30]   Pressure-Induced Superconductivity of the Quasi-One-Dimensional Organic Conductor (TMTTF)2TaF6 [J].
Itoi, Miho ;
Nakamura, Toshikazu ;
Uwatoko, Yoshiya .
MATERIALS, 2022, 15 (13)