Origin of Pressure-induced Superconducting Phase in KxFe2−ySe2 studied by Synchrotron X-ray Diffraction and Spectroscopy
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K. Shimizu | J. Mizuki | Y. Liao | K. Tsuei | H. Okazaki | T. Ozaki | Y. Takano | H. Yamaoka | Yoshiya Yamamoto | Jung‐Fu Lin | N. Hiraoka | H. Ishii | Masashi Tanaka | T. Kagayama | Hidenori Fujita | Y. Yamamoto
[1] Y. Matsushita,et al. Origin of the Higher-$T_\rm{c}$ Phase in the K$_x$Fe$_{2-y}$Se$_2$ System , 2015, 1504.04197.
[2] Y. Matsushita,et al. Origin of the Higher-Tc Phase in the KxFe2-ySe2 System , 2015 .
[3] K. Shimizu,et al. Pressure dependence of superconductive transition temperature on KxFe2-ySe2 , 2015 .
[4] Q. Xue,et al. Superconductivity above 100 K in single-layer FeSe films on doped SrTiO3. , 2015, Nature materials.
[5] A. Ricci,et al. Direct observation of nanoscale interface phase in the superconducting chalcogenide KxFe2-ySe2 with intrinsic phase separation , 2015, 1501.06745.
[6] R. Valentí,et al. Origin of the superconducting state in the collapsed tetragonal phase of KFe2As2 , 2015, 1501.03068.
[7] Y. Nakajima,et al. High-temperature superconductivity stabilized by electron-hole interband coupling in collapsed tetragonal phase of KFe 2 As 2 under high pressure , 2015, 1501.02822.
[8] H. Mao,et al. Tripling the critical temperature of KFe$_{2}$As$_{2}$ by carrier switch , 2015, 1501.00330.
[9] S. Sinogeikin,et al. Conventional empirical law reverses in the phase transitions of 122-type iron-based superconductors , 2014, Scientific Reports.
[10] T. Mizokawa,et al. X-ray absorption and photoemission spectroscopy of electronic phase separation inKxFe2−ySe2 , 2014 .
[11] Y. Ikeda,et al. Role of valence fluctuations in the superconductivity of Ce122 compounds. , 2014, Physical review letters.
[12] Takashi Mizokawa,et al. Spectromicroscopy of electronic phase separation in KxFe2−ySe2 superconductor , 2014, Scientific Reports.
[13] Q. Xue,et al. Superconductivity in single-layer films of FeSe with a transition temperature above 100 K , 2014, 1406.3435.
[14] A. Bianconi,et al. Interplay of electronic and lattice degrees of freedom in A_{1−x}Fe_{2−y}Se_{2} superconductors under pressure , 2013, 1306.4305.
[15] H. Wen,et al. Influence of microstructure on superconductivity in KxFe2−ySe2 and evidence for a new parent phase K2Fe7Se8 , 2013, Nature Communications.
[16] D. Casa,et al. Spin-state transition in the Fe pnictides. , 2012, Physical review letters.
[17] E. Dagotto. Colloquium: The unexpected properties of alkali metal iron selenide superconductors , 2012, 1210.6501.
[18] S. Demura,et al. Evolution of superconductivity in isovalent Te-substituted KxFe2−ySe2 crystals , 2012, 1209.2002.
[19] M. Fang,et al. Role of the 245 phase in alkaline iron selenide superconductors revealed by high-pressure studies , 2012, 1209.1340.
[20] T. Das,et al. Origin of pressure induced second superconducting dome in Ay Fe2−xSe2 [A = K, (Tl,Rb)] , 2012, 1208.2468.
[21] Lin Zhao,et al. Phase diagram and electronic indication of high-temperature superconductivity at 65 K in single-layer FeSe films. , 2012, Nature materials.
[22] T. Mizokawa,et al. Coexistence of different electronic phases in the K 0.8 Fe 1.6 Se 2 superconductor: A bulk-sensitive hard x-ray spectroscopy study , 2012, 1206.3046.
[23] T. Ying,et al. Observation of superconductivity at 30∼46K in AxFe2Se2 (A = Li, Na, Ba, Sr, Ca, Yb, and Eu) , 2012, Scientific Reports.
[24] Yuanbo Zhang,et al. Electronic Identification of the Parental Phases and Mesoscopic Phase Separation of KxFe2-ySe2 Superconductors , 2011 .
[25] Gu,et al. Re-emerging superconductivity at 48 kelvin in iron chalcogenides , 2011, Nature.
[26] J. M. Chen,et al. Pressure dependence of the electronic structure and spin state in Fe1.01Se superconductors probed by x-ray absorption and x-ray emission spectroscopy , 2011 .
[27] Q. Xue,et al. Phase separation and magnetic order in K-doped iron selenide superconductor , 2011, Nature Physics.
[28] K. H. Kim,et al. Revealing the Dual Nature of Magnetism in Iron Pnictides and Iron Chalcogenides Using X-ray Emission Spectroscopy , 2011, 1107.2211.
[29] X. H. Chen,et al. Common crystalline and magnetic structure of superconducting A2Fe4Se5 (A=K,Rb,Cs,Tl) single crystals measured using neutron diffraction. , 2011, Physical review letters.
[30] M. Zhang,et al. Coexistence of superconductivity and antiferromagnetism in single crystals A0.8Fe2−ySe2 (A=K, Rb, Cs, Tl/K and Tl/Rb): Evidence from magnetization and resistivity , 2011, 1102.2783.
[31] M. Green,et al. A Novel Large Moment Antiferromagnetic Order in K 0.8 Fe 1.6 Se 2 Superconductor , 2011, 1102.0830.
[32] H. Mao,et al. Pressure-driven quantum criticality in iron-selenide superconductors. , 2010, Physical review letters.
[33] Gang Wang,et al. Superconductivity in the iron selenide KxFe2Se2 (0<= x<= 1) , 2010, 1012.2924.
[34] Gang Wang,et al. Superconductivity in the iron selenide K x Fe 2 Se 2 (0≤x≤1.0) , 2010 .
[35] David J. Singh,et al. Spin-Lattice Coupling and Superconductivity in Fe Pnictides , 2010 .
[36] K. Deguchi,et al. Anion height dependence of Tc for the Fe-based superconductor , 2010, 1001.1801.
[37] P. Glatzel,et al. The 1s x-ray absorption pre-edge structures in transition metal oxides , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.
[38] F. Hsu,et al. Superconductivity in the PbO-type structure α-FeSe , 2008, Proceedings of the National Academy of Sciences.
[39] Hideo Hosono,et al. Iron-Based Layered Superconductor La[O1-xFx]FeAs (x = 0.05—0.12) with Tc = 26 K. , 2008 .
[40] Hideo Hosono,et al. Iron-based layered superconductor La[O(1-x)F(x)]FeAs (x = 0.05-0.12) with T(c) = 26 K. , 2008, Journal of the American Chemical Society.
[41] A. Shukla,et al. Probing the 3d spin momentum with X-ray emission spectroscopy: the case of molecular-spin transitions. , 2006, The journal of physical chemistry. B.
[42] A. Vlaicu,et al. Kβ Resonant X-ray Emission Spectroscopy for Fe, Fe2O3 and Fe3O4 , 2004 .
[43] A. Shukla,et al. New spectroscopy solves an old puzzle: the Kondo scale in heavy fermions. , 2002, Physical review letters.
[44] D. Siddons,et al. Elimination of the inner-shell lifetime broadening in x-ray-absorption spectroscopy. , 1991, Physical review letters.
[45] H. Mao,et al. High-Pressure Physics: The 1-Megabar Mark on the Ruby R1 Static Pressure Scale , 1976, Science.
[46] K. Tsutsumi. The X-ray Non-diagram Lines Kβ' of Some Compounds of the Iron Group , 1959 .
[47] A. Bianconi,et al. Spectromicroscopy of electronic phase separation in K x Fe 2 − y Se 2 superconductor , 2017 .
[48] R. Valentí,et al. Origin of the superconducting state in the collapsed tetragonal phase of KFe 2 As 2 : Supplemental Information , 2015 .
[49] Lin Zhao,et al. Phase Diagram and High Temperature Superconductivity at 65 K in Tuning Carrier Concentration of Single-Layer FeSe Films , 2012 .
[50] X. H. Chen,et al. D ec 2 01 0 Heavily electron-doped electronic structure and isotropic superconducting gap in A x Fe 2 Se 2 ( A = K , Cs ) , 2011 .
[51] A. P. Hammersley,et al. Two-dimensional detector software: From real detector to idealised image or two-theta scan , 1996 .