Self-Doping Effect in FeSe Superconductor by Pressure-Induced Charge Transfer
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作者:
Rui Zhang
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机构:Lanzhou University,Key Laboratory of Mechanics on Western Disaster and Environment, Ministry of Education, College of Civil Engineering and Mechanic
Rui Zhang
Peifeng Gao
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机构:Lanzhou University,Key Laboratory of Mechanics on Western Disaster and Environment, Ministry of Education, College of Civil Engineering and Mechanic
Peifeng Gao
Xingzhe Wang
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机构:Lanzhou University,Key Laboratory of Mechanics on Western Disaster and Environment, Ministry of Education, College of Civil Engineering and Mechanic
Xingzhe Wang
Gianluca De Marzi
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机构:Lanzhou University,Key Laboratory of Mechanics on Western Disaster and Environment, Ministry of Education, College of Civil Engineering and Mechanic
Gianluca De Marzi
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[1] Lanzhou University,Key Laboratory of Mechanics on Western Disaster and Environment, Ministry of Education, College of Civil Engineering and Mechanic
Several unambiguous experimental observations clearly showed that the critical temperature of FeSe superconductor depends significantly on the microstructure. Experiments also showed that the critical temperature can be greatly enhanced by the application of external pressure. The present paper deals with the effect of pressure on charge transfer and self-doping properties of the superconducting compound FeSe, based on the investigation of the pressure dependence of the Fermi surface by means of first-principles methods. From the numerically evaluated electronic and crystalline properties, the pressure-induced modifications of the FeSe Fermi surface’s topology are determined. The Luttinger theorem was also used to evaluate the carrier concentration on the Fe atomic sites from the evolution of the Fermi surface. We have found that the electronic density at the Fe sites increases with the increase in external pressure, following the distortion of Fermi surface. Our simulations reveal that the pressure-induced charge transfer from Se atoms to Fe atoms in the FeSe superconductor can be interpreted as a direct correlation between the electron carrier concentration and the applied pressure. The pressure dependence of superconducting properties of FeSe can be reasonably ascribed to a self-doping effect. The predictions about the electronic density on the Fe sites (reaching a value of 0.1, where the corresponding pressure is about 8.6 GPa) are in good agreement with experimental data available in literature. The interpretation of the pressure-induced Tc enhancement in FeSe caused by the electron transfer and self-doping effect is carried out, which can be the correct approach to explain the Tc behavior under a wide type of mechanical loading.
机构:
Indian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, IndiaIndian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, India
Warshi, M. Kamal
Kumar, Anil
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Indian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, IndiaIndian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, India
Kumar, Anil
Mishra, Vikash
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Indian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, IndiaIndian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, India
Mishra, Vikash
Sati, Aanchal
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Indian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, IndiaIndian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, India
Sati, Aanchal
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Sagdeo, Archna
Kumar, Rajesh
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Indian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, IndiaIndian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, India
Kumar, Rajesh
Sagdeo, P. R.
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Indian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, IndiaIndian Inst Technol, Discipline Phys, Mat Res Lab, Indore 453552, Madhya Pradesh, India
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Univ North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Deng, Yehao
Ni, Zhenyi
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Univ North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Ni, Zhenyi
Palmstrom, Axel F.
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Natl Renewable Energy Lab, Golden, CO 80401 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Palmstrom, Axel F.
Zhao, Jingjing
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Univ North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Zhao, Jingjing
Xu, Shuang
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Univ North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Xu, Shuang
Van Brackle, Charles H.
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Univ North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Van Brackle, Charles H.
Xiao, Xun
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Univ North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Xiao, Xun
Zhu, Kai
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Natl Renewable Energy Lab, Golden, CO 80401 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA
Zhu, Kai
Huang, Jinsong
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Univ North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USAUniv North Carolina Chapel Hill, Dept Appl Phys Sci, Chapel Hill, NC 27599 USA