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Doping evolution of nodal electron dynamics in trilayer cuprate superconductor Bi2Sr2Ca2Cu3O10+δ revealed by laser-based angle-resolved photoemission spectroscopy

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【作者】 陈浩史聚民罗翔宇李颖昊陈逸雯殷超辉束英杰张九相苗泰民梁波朱文培蔡能任晓琳林成天张申金王志敏张丰丰杨峰彭钦军许祖彦刘国东毛寒青李昕彤赵林周兴江

【Author】 Hao Chen;Jumin Shi;Xiangyu Luo;Yinghao Li;Yiwen Chen;Chaohui Yin;Yingjie Shu;Jiuxiang Zhang;Taimin Miao;Bo Liang;Wenpei Zhu;Neng Cai;Xiaolin Ren;Chengtian Lin;Shenjin Zhang;Zhimin Wang;Fengfeng Zhang;Feng Yang;Qinjun Peng;Zuyan Xu;Guodong Liu;Hanqing Mao;Xintong Li;Lin Zhao;X.J.Zhou;Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences;University of Chinese Academy of Sciences;Max Planck Institute for Solid State Research;Technical Institute of Physics and Chemistry, Chinese Academy of Sciences;Songshan Lake Materials Laboratory;

【通讯作者】 赵林;周兴江;

【机构】 Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of SciencesUniversity of Chinese Academy of SciencesMax Planck Institute for Solid State ResearchTechnical Institute of Physics and Chemistry, Chinese Academy of SciencesSongshan Lake Materials Laboratory

【摘要】 The doping evolution of the nodal electron dynamics in the trilayer cuprate superconductor Bi2Sr2Ca2Cu3O10+δ(Bi2223) is investigated using high-resolution laser-based angle-resolved photoemission spectroscopy(ARPES).Bi2223single crystals with different doping levels are prepared by controlled annealing,which cover the underdoped,optimallydoped and overdoped regions.The electronic phase diagram of Bi2223 is established which describes the Tc dependence on the sample doping level.The doping dependence of the nodal Fermi momentum for the outer(OP) and inner(IP)CuO2 planes is determined.Charge distribution imbalance between the OP and IP CuO2 planes is quantified,showing enhanced disparity with increasing doping.Nodal band dispersions demonstrate a prominent kink at ~ 94 meV in the IP band,attributed to the unique Cu coordination in the IP plane,while a weaker ~ 60 meV kink is observed in the OP band.The nodal Fermi velocity of both OP and IP bands is nearly constant at ~ 1.62 eV·? independent of doping.These results provide important information to understand the origin of high Tc and superconductivity mechanism in high temperature cuprate superconductors.

【Abstract】 The doping evolution of the nodal electron dynamics in the trilayer cuprate superconductor Bi2Sr2Ca2Cu3O10+δ(Bi2223) is investigated using high-resolution laser-based angle-resolved photoemission spectroscopy(ARPES).Bi2223single crystals with different doping levels are prepared by controlled annealing,which cover the underdoped,optimallydoped and overdoped regions.The electronic phase diagram of Bi2223 is established which describes the Tc dependence on the sample doping level.The doping dependence of the nodal Fermi momentum for the outer(OP) and inner(IP)CuO2 planes is determined.Charge distribution imbalance between the OP and IP CuO2 planes is quantified,showing enhanced disparity with increasing doping.Nodal band dispersions demonstrate a prominent kink at ~ 94 meV in the IP band,attributed to the unique Cu coordination in the IP plane,while a weaker ~ 60 meV kink is observed in the OP band.The nodal Fermi velocity of both OP and IP bands is nearly constant at ~ 1.62 eV·? independent of doping.These results provide important information to understand the origin of high Tc and superconductivity mechanism in high temperature cuprate superconductors.

【基金】 supported by the National Natural Science Foundation of China (Grant Nos. 12488201 by X.J.Z.,12374066 by L.Z., and 12374154 by X.T.L.);the National Key Research and Development Program of China (Grant Nos. 2021YFA1401800 by X.J.Z., 2022YFA1604200 by L.Z., 2022YFA1403900 by G.D.L. and 2023YFA1406000by X.T.L.);the Strategic Priority Research Program (B) of the Chinese Academy of Sciences (Grant No. XDB25000000by X.J.Z.);Innovation Program for Quantum Science and Technology (Grant No. 2021ZD0301800 by X.J.Z.);the Youth Innovation Promotion Association of CAS (Grant No. Y2021006 by L.Z.);the Synergetic Extreme Condition User Facility (SECUF)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2025年07期
  • 【分类号】O511.3
  • 【下载频次】1
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