Superconductivity at 40 K in lithiation-processed [(Fe,Al)(OH)2][FeSe]1.2 with a layered structure
Guobing Hu, Mengzhu Shi, Wenxiang Wang, Changsheng Zhu, Zeliang Sun,, Jianhua Cui, Weizhuang Zhuo, Fanghang Yu, Xigang Luo, Xianhui Chen

TL;DR
This paper reports the synthesis of a new layered heterostructure [(Fe,Al)(OH)2][FeSe]1.2 that becomes superconducting at 40 K after lithiation, highlighting a novel structure and the robustness of FeSe-based superconductivity.
Contribution
The study introduces a new layered heterostructure with a unique combination of tetragonal FeSe and hexagonal (Fe,Al)(OH)2 layers, demonstrating superconductivity at 40 K after lithiation.
Findings
Superconductivity at 40 K achieved after lithiation.
New layered heterostructure synthesized via hydrothermal ion-exchange.
Superconductivity is robust in FeSe-based structures.
Abstract
Exploration of new superconductors has always been one of the research directions in condensed matter physics. We report here a new layered heterostructure of [(Fe,Al)(OH)2][FeSe]1.2, which is synthesized by the hydrothermal ion-exchange technique. The structure is suggested by a combination of X-ray powder diffraction and the electron diffraction (ED). [(Fe,Al)(OH)2][FeSe]1.2 is composed of the alternating stacking of tetragonal FeSe layer and hexagonal (Fe,Al)(OH)2 layer. In [(Fe,Al)(OH)2][FeSe]1.2, there exists mismatch between the FeSe sub-layer and (Fe,Al)(OH)2 sub-layer, and the lattice of the layered heterostructure is quasi-commensurate. The as-synthesized [(Fe,Al)(OH)2][FeSe]1.2 is non-superconducting due to the Fe vacancies in the FeSe layer. The superconductivity with a Tc of 40 K can be achieved after a lithiation process, which is due to the elimination of the Fe vacancies…
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