Doping-dependent critical current properties in K, Co, and P-doped BaFe2As2 single crystals

被引:65
|
作者
Ishida, Shigeyuki [1 ]
Song, Dongjoon [1 ]
Ogino, Hiraku [1 ]
Iyo, Akira [1 ]
Eisaki, Hiroshi [1 ]
Nakajima, Masamichi [2 ]
Shimoyama, Jun-Ichi [3 ]
Eisterer, Michael [4 ]
机构
[1] Natl Inst Adv Ind Sci & Technol, Elect & Photon Res, Tsukuba, Ibaraki 3058568, Japan
[2] Osaka Univ, Dept Phys, Toyonaka, Osaka 5600043, Japan
[3] Aoyama Gakuin Univ, Dept Math & Phys, Sagamihara, Kanagawa 2525258, Japan
[4] TU Wien, Atominstitut, Stadionallee 2, A-1020 Vienna, Austria
基金
日本学术振兴会; 日本科学技术振兴机构; 奥地利科学基金会;
关键词
CRITICAL-CURRENT DENSITY; TEMPERATURE; CREEP; PHASE; TRANSITION; MAGNETIZATION; FLUCTUATION; YBA2CU3O7; DEFECTS; LATTICE;
D O I
10.1103/PhysRevB.95.014517
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In order to establish the doping dependence of the critical current properties in the iron-based superconductors, the in-plane critical current density J(c) of BaFe2As2-based superconductors Ba1-xKxFe2As2 (K-Ba122), Ba(Fe1-xCox)(2)As-2 (Co-Ba122), and BaFe2(As1-xPx)(2) (P-Ba122) in a wide range of doping concentration x was investigated by means of magnetization hysteresis loop (MHL) measurements on single-crystal samples. Depending on the dopant elements and their concentration, J(c) exhibits a variety of magnetic-field H and temperature T dependences. (1) In the case of K-Ba122, the MHL of the underdoped samples (x <= 0.33) exhibits a second magnetization peak (SMP), which sustains high J(c) at high H and high T, exceeding 10(5)A/cm(2) at T = 25K and mu H-0 = 6 T for x = 0.30. On the other hand, the SMP is missing in the optimally (x similar to 0.36-0.40) and overdoped (x similar to 0.50) samples and consequently J(c) rapidly decreases by more than one order of magnitude, although the change in T-c is within a few K. (2) For Co-Ba122, the SMP is always present over the entire superconducting (SC) dome from the underdoped (x similar to 0.05) to the overdoped (x similar to 0.12) region. However, the magnitude of J(c) significantly changes with x, exhibiting a sharp maximum at x similar to 0.057, which is a slightly underdoped composition for Co-Ba122. (3) For P-Ba122, the highest J(c) is attained at x = 0.30, corresponding to the highest T-c composition. For the overdoped samples, the MHL is characterized by a SMP located close to the irreversibility field H-irr. Common to the three doping variations, J(c) becomes highest at the underdoping side of the SC dome near the phase boundary between the SC phase and the antiferromagnetic-orthorhombic (AFO) phase. Also, the peak appears in a narrow range of doping, distinct from the T-c dome with a broad maximum. These similarities in the three cases indicate that the observed doping dependence of J(c) is intrinsic to the BaFe2As2-based superconductors. The scaling analysis of the normalized pinning force density fp as a function of the reduced magnetic field h = H/H-irr shows that the peak position in the pinning force h(max) depends on x, indicating a change in pinning with x. On the other hand, high-J(c) samples always attain similar h(max) values of 0.40-0.45 for all the dopants, which may suggest that a common pinning source causes the highest J(c). A quantitative analysis of the T -dependent J(c) indicates that the two pinning mechanisms, namely, the spatial variations in T-c (referred to as delta T-c pinning) and the fluctuations in the mean free path (delta l pinning), are enhanced for the underdoped samples, which results in the enhancement of J(c). Possible origins for the different pinning mechanism are discussed in connection with the x dependence of T-c, the residual resistivity, AFO domain boundaries, and a possible quantum critical point.
引用
收藏
页数:21
相关论文
共 50 条
  • [31] Vortex imaging in Co-doped BaFe2As2
    Eskildsen, M. R.
    Vinnikov, L. Ya.
    Veshchunov, I. S.
    Artemova, T. M.
    Blasius, T. D.
    Densmore, J. M.
    Dewhurst, C. D.
    Ni, N.
    Kreyssig, A.
    Bud'ko, S. L.
    Canfield, P. C.
    Goldman, A. I.
    PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS, 2009, 469 (9-12): : 529 - 534
  • [32] Doping-dependent superconducting physical quantities of K-doped BaFe2 As2 obtained through infrared spectroscopy
    Lee, Seokbae
    Seo, Yu-Seong
    Roh, Seulki
    Song, Dongjoon
    Eisaki, Hiroshi
    Hwang, Jungseek
    SCIENTIFIC REPORTS, 2022, 12 (01):
  • [33] Persistent magnetism in silver-doped BaFe2As2 crystals
    Li, Li
    Cao, Huibo
    Parker, David S.
    Kuhn, Stephen J.
    Sefat, Athena S.
    PHYSICAL REVIEW B, 2016, 94 (13)
  • [34] Precision microwave electrodynamic measurements of K- and Co-doped BaFe2As2
    Bobowski, J. S.
    Baglo, J. C.
    Day, James
    Dosanjh, P.
    Ofer, Rinat
    Ramshaw, B. J.
    Liang, Ruixing
    Bonn, D. A.
    Hardy, W. N.
    Luo, Huiqian
    Wang, Zhao-Sheng
    Fang, Lei
    Wen, Hai-Hu
    PHYSICAL REVIEW B, 2010, 82 (09):
  • [35] Electronic Properties of BaFe2As2 upon Doping and Pressure: The Prominent Role of the As p Orbitals
    Baledent, V.
    Rullier-Albenque, F.
    Colson, D.
    Ablett, J. M.
    Rueff, J. -P.
    PHYSICAL REVIEW LETTERS, 2015, 114 (17)
  • [36] Enhancement of critical current density and vortex activation energy in proton-irradiated Co-doped BaFe2As2
    Taen, Toshihiro
    Nakajima, Yasuyuki
    Tamegai, Tsuyoshi
    Kitamura, Hisashi
    PHYSICAL REVIEW B, 2012, 86 (09):
  • [37] Satellites and large doping and temperature dependence of electronic properties in hole-doped BaFe2As2
    Werner, Philipp
    Casula, Michele
    Miyake, Takashi
    Aryasetiawan, Ferdi
    Millis, Andrew J.
    Biermann, Silke
    NATURE PHYSICS, 2012, 8 (04) : 331 - 337
  • [38] Effect of heat treatments on superconducting properties and connectivity in K-doped BaFe2As2
    Tarantini, Chiara
    Pak, Chongin
    Su, Yi-Feng
    Hellstrom, Eric E.
    Larbalestier, David C.
    Kametani, Fumitake
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [39] Bulk magnetization and strong intrinsic pinning in Ni-doped BaFe2As2 single crystals
    Pervakov, K. S.
    Vlasenko, V. A.
    Khlybov, E. P.
    Zaleski, A.
    Pudalov, V. M.
    Eltsev, Yu F.
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2013, 26 (01):
  • [40] Signatures of filamentary superconductivity in antiferromagnetic BaFe2As2 single crystals
    Moseley, D.
    Yates, K. A.
    Branford, W. R.
    Sefat, A. S.
    Mandrus, D.
    Stuard, S. J.
    Salem-Sugui, S.
    Ghivelder, L.
    Cohen, L. F.
    EPL, 2015, 111 (03)