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Antiferromagnetic Quantum Critical Point and Superconductivity in Self-Intercalated TMD V_{1/4}VS_{2} under High
Jingwei Miao1, Jiajia Feng1, Wei Zhong1
1Center for High Pressure Science & Technology Advanced Research, 10 East Xibeiwang Road, Haidian, Beijing 100193, China.
None:
Self-intercalation in transition metal dichalcogenides (TMDs) offers a unique strategy for doping and spin ordering that preserves structural integrity, minimizing lattice distortions. This modification introduces additional electron density, spin states, and potentially spontaneous superlattice formation. Combining with further high-pressure modulation, more quantum phenomena could be induced for new physics exploration. Here, we present a high-pressure study of the self-intercalated compound V_{1/4}VS_{2}, where antiferromagnetic order arises from 3d electrons localized on the vanadium atoms intercalated between the layers. Under pressure, these localized electrons progressively delocalize, leading to the suppression of the antiferromagnetic order and the emergence of non-Fermi liquid behavior near 9 GPa, signaling an antiferromagnetic quantum critical point. Under higher pressure, a Lifshitz transition-induced superconductivity is observed, while the crystalline symmetry remains preserved up to 104.4 GPa. Notably, this marks the first observation of superconductivity in a self-intercalated TMD under pressure. These findings highlight V_{1/4}VS_{2} as a model two-dimensional system for exploring pressure-induced quantum criticality, electronic topological transitions, and related nontrivial superconductivity, paving the way to new physics by fully exploring the potential of self-intercalated TMDs.
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