Orbital-Dependent Electron Correlation in Double-Layer Nickelate La3Ni2O7

Fuente: arXiv
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Main Authors: Yang, Jiangang, Sun, Hualei, Hu, Xunwu, Xie, Yuyang, Miao, Taimin, Luo, Hailan, Chen, Hao, Liang, Bo, Zhu, Wenpei, Qu, Gexing, Chen, Cui-Qun, Huo, Mengwu, Huang, Yaobo, Zhang, Shenjin, Zhang, Fengfeng, Yang, Feng, Wang, Zhimin, Peng, Qinjun, Mao, Hanqing, Liu, Guodong, Xu, Zuyan, Qian, Tian, Yao, Dao-Xin, Wang, Meng, Zhao, Lin, Zhou, X. J.
Format: Preprint
Published: 2023
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author Yang, Jiangang
Sun, Hualei
Hu, Xunwu
Xie, Yuyang
Miao, Taimin
Luo, Hailan
Chen, Hao
Liang, Bo
Zhu, Wenpei
Qu, Gexing
Chen, Cui-Qun
Huo, Mengwu
Huang, Yaobo
Zhang, Shenjin
Zhang, Fengfeng
Yang, Feng
Wang, Zhimin
Peng, Qinjun
Mao, Hanqing
Liu, Guodong
Xu, Zuyan
Qian, Tian
Yao, Dao-Xin
Wang, Meng
Zhao, Lin
Zhou, X. J.
author_facet Yang, Jiangang
Sun, Hualei
Hu, Xunwu
Xie, Yuyang
Miao, Taimin
Luo, Hailan
Chen, Hao
Liang, Bo
Zhu, Wenpei
Qu, Gexing
Chen, Cui-Qun
Huo, Mengwu
Huang, Yaobo
Zhang, Shenjin
Zhang, Fengfeng
Yang, Feng
Wang, Zhimin
Peng, Qinjun
Mao, Hanqing
Liu, Guodong
Xu, Zuyan
Qian, Tian
Yao, Dao-Xin
Wang, Meng
Zhao, Lin
Zhou, X. J.
contents The latest discovery of high temperature superconductivity near 80K in La3Ni2O7 under high pressure has attracted much attention. Many proposals are put forth to understand the origin of superconductivity.The determination of electronic structures is a prerequisite to establish theories to understand superconductivity in nickelates but is still lacking. Here we report our direct measurement of the electronic structures of La3Ni2O7 by high-resolution angle resolved photoemission spectroscopy. The Fermi surface and band structures of La3Ni2O7 are observed and compared with the band structure calculations. Strong electron correlations are revealed which are orbital- and momentum dependent. A flat band is formed from the Ni-3dz2 orbitals around the zone corner which is ~50meV below the Fermi level and exhibits the strongest electron correlation. In many theoretical proposals, this band is expected to play the dominant role in generating superconductivity in La3Ni2O7. Our observations provide key experimental information to understand the electronic structure and origin of high temperature superconductivity in La3Ni2O7.
format Preprint
id arxiv_https___arxiv_org_abs_2309_01148
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Orbital-Dependent Electron Correlation in Double-Layer Nickelate La3Ni2O7
Yang, Jiangang
Sun, Hualei
Hu, Xunwu
Xie, Yuyang
Miao, Taimin
Luo, Hailan
Chen, Hao
Liang, Bo
Zhu, Wenpei
Qu, Gexing
Chen, Cui-Qun
Huo, Mengwu
Huang, Yaobo
Zhang, Shenjin
Zhang, Fengfeng
Yang, Feng
Wang, Zhimin
Peng, Qinjun
Mao, Hanqing
Liu, Guodong
Xu, Zuyan
Qian, Tian
Yao, Dao-Xin
Wang, Meng
Zhao, Lin
Zhou, X. J.
Superconductivity
Strongly Correlated Electrons
The latest discovery of high temperature superconductivity near 80K in La3Ni2O7 under high pressure has attracted much attention. Many proposals are put forth to understand the origin of superconductivity.The determination of electronic structures is a prerequisite to establish theories to understand superconductivity in nickelates but is still lacking. Here we report our direct measurement of the electronic structures of La3Ni2O7 by high-resolution angle resolved photoemission spectroscopy. The Fermi surface and band structures of La3Ni2O7 are observed and compared with the band structure calculations. Strong electron correlations are revealed which are orbital- and momentum dependent. A flat band is formed from the Ni-3dz2 orbitals around the zone corner which is ~50meV below the Fermi level and exhibits the strongest electron correlation. In many theoretical proposals, this band is expected to play the dominant role in generating superconductivity in La3Ni2O7. Our observations provide key experimental information to understand the electronic structure and origin of high temperature superconductivity in La3Ni2O7.
title Orbital-Dependent Electron Correlation in Double-Layer Nickelate La3Ni2O7
topic Superconductivity
Strongly Correlated Electrons
url https://arxiv.org/abs/2309.01148