Emergent superconductivity in an iron-based honeycomb lattice initiated by pressure-driven spin-crossover

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作者
Yonggang Wang
Jianjun Ying
Zhengyang Zhou
Junliang Sun
Ting Wen
Yannan Zhou
Nana Li
Qian Zhang
Fei Han
Yuming Xiao
Paul Chow
Wenge Yang
Viktor V. Struzhkin
Yusheng Zhao
Ho-kwang Mao
机构
[1] Center for High Pressure Science and Technology Advanced Research (HPSTAR),HPSynC, Geophysical Laboratory
[2] Carnegie Institution of Washington,Geophysical Laboratory
[3] Carnegie Institution of Washington,HPCAT, Geophysical Laboratory
[4] Carnegie Institution of Washington,College of Chemistry and Molecular Engineering
[5] Peking University,College of Chemistry and Chemical Engineering
[6] Chongqing University,Institute of Nanostructured Functional Materials
[7] Huanghe Science and Technology College,undefined
[8] Southern University of Science and Technology,undefined
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摘要
The discovery of iron-based superconductors (FeSCs), with the highest transition temperature (Tc) up to 55 K, has attracted worldwide research efforts over the past ten years. So far, all these FeSCs structurally adopt FeSe-type layers with a square iron lattice and superconductivity can be generated by either chemical doping or external pressure. Herein, we report the observation of superconductivity in an iron-based honeycomb lattice via pressure-driven spin-crossover. Under compression, the layered FePX3 (X = S, Se) simultaneously undergo large in-plane lattice collapses, abrupt spin-crossovers, and insulator-metal transitions. Superconductivity emerges in FePSe3 along with the structural transition and vanishing of magnetic moment with a starting Tc ~ 2.5 K at 9.0 GPa and the maximum Tc ~ 5.5 K around 30 GPa. The discovery of superconductivity in iron-based honeycomb lattice provides a demonstration for the pursuit of transition-metal-based superconductors via pressure-driven spin-crossover.
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