Pressure-induced Ising superconductivity in organic-intercalated 1 T -TaS 2
Jiaqi Chen, Shuyang Wang, Lixuan Yu, Xuliang Chen, Chao An, Yonghui Zhou, Yilin Wang, Zhaorong Yang
Chinese Academy of Sciences Hefei Institutes of Physical Science Shandong University High Magnetic Field Laboratory
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摘要与影响
Layered transition metal dichalcogenides host a rich landscape of correlated electronic phases that are profoundly sensitive to interlayer coupling. Although both thinning and pressure have been individually used to tune these properties, the high-pressure behavior of low-dimensional systems remains largely unexplored. Here, we propose a synergistic tuning strategy by combination of organic cation intercalation and pressure to simulate the properties of low-dimensional materials under pressure. We show that intercalating cetyltrimethylammonium cations into the bulk 1T-TaS2 significantly weakens the interlayer coupling and leads to an effective reduction in dimensionality. Moreover, the intercalated sample exhibits distinct features under high pressure as compared with non-intercalated one. The superconductivity in the intercalated sample is induced accompanied by a complete suppression of nearly commensurate CDW order, differing from the melting of commensurate state in the non-intercalated case. Upon further compression up to 58.1 GPa, the superconductivity displays a dome-shaped evolution, also without showing re-enhancement that presented in the non-intercalated sample. More strikingly, the superconductivity in the intercalated 1T-TaS2 displays signatures of Ising superconductivity, with its in-plane upper critical field exceeding twice the Pauli paramagnetic limit. Our findings not only provide a powerful route for tuning the collective electronic states but also open up possibilities in searching for emergent phenomena in low-dimensional materials.
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