四方晶系
超导电性
单斜晶系
正交晶系
化学
价(化学)
凝聚态物理
电子结构
相图
结晶学
原子轨道
环境压力
晶体结构
Crystal(编程语言)
基态
吸收光谱法
相(物质)
晶体化学
相变
单晶
光电发射光谱学
三元运算
光谱学
超导相干长度
衍射
反铁电性
铜酸盐
双层
作者
Nana Li,Jiayi Guan,Limin Yan,Xiaozhi Yan,Mingtao Li,Xuqiang Liu,Kai Zhang,Feiyu Li,Shu Cai,Haini Dong,Adama N’Diaye,M. Amboage,Junjie Zhang,Yantao Cao,Hanjie Guo,Qingyu Kong,Liling Sun,Wenge Yang
摘要
Recent discoveries of pressure-induced high-temperature superconductivity in bilayer and trilayer Ruddlesden–Popper nickelates have sparked global research interest in these unconventional superconducting systems. Understanding the crystal and electronic structures is essential to uncover the underlining mechanism of superconductivity. For trilayer La 4 Ni 3 O 10−δ, structural studies have only been conducted at ambient temperature, leaving a vast P – T space unexplored. Here we report our in situ investigations using X-ray diffraction (XRD) and X-ray absorption spectroscopy (XAS), covering pressures from 0 to 51.3 GPa and temperatures from 10 to 300 K, to explore the critical P – T phase diagram of La 4 Ni 3 O 10−δ . Our results show that La 4 Ni 3 O 10−δ undergoes a phase transition from monoclinic ( P 2 1 / a ) to tetragonal ( I 4/ mmm ) under pressure and is further transformed to an orthorhombic ( Bmab ) phase as it enters the superconducting state upon cooling at pressures above 48 GPa. Additionally, the Ni valence state increases with the pressure and remains stable at low temperatures. The p and d orbitals of Ni and the enhanced hybridization between Ni 3d and O 2p orbitals play a significant role in the superconducting state due to the distortion of the NiO 6 octahedra. Our study provides important insights into the mechanisms driving high- T c superconductivity in nickelates and establishes a basis for further investigation into related superconducting systems.
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