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May 3, 2026National Science Review0 citationsOpen Access

Self-adaptive hetero-phase superlattices in TaS2 via layer-resolved 1T-to-1H transformations

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ZDZhenyu DingYWYihao WangRLR K Li

Key Points

  • This research aims to control phase-stacking sequences in TaS2 crystals to create hetero-phase superlattices. The study focuses on establishing a transformative phase engineering method.
  • In-situ structural phase transitions in TaS2 crystals using layer-resolved techniques.
  • Analysis of inter-layer sliding and intra-layer S-plane sliding to achieve 1T-to-1H transformations.
  • Investigating the dynamic engineering of hetero-phase sequences in bulk architectures.
  • Two distinct superconducting states identified in reconfigurable superlattices formed from paired 1H/1T bilayers and sandwiched 1H/1T/1H’ trilayers.
  • Charge density wave order in the 1T layer suppresses superconductivity in the 1H/1T superlattice.
  • Demonstrated deterministic control over phase-stacking sequences through engineered hetero-phase coupling.

Abstract

Abstract Artificial hetero-phase superlattices constructed from transition metal dichalcogenides (TMDs) provide a powerful platform for exploring exotic physical phenomena and delivering structurally robust devices. However, achieving deterministic control over phase-stacking sequences in bulk architectures remains a significant challenge. Here, we report a self-adaptive superlattice system formed in TaS2 crystals through an in-situ structural phase transition. Coordinated inter-layer sliding and intra-layer S-plane sliding drive layer-resolved 1T-to-1H transformations. This two-dimensional (2D) transformation pathway enables deterministic and dynamic engineering of hetero-phase sequences within a three-dimensional (3D) crystal, with the resulting interfaces stabilized by persistent inter-phase coupling. Within these reconfigurable superlattices, we identify two distinct superconducting states arising from paired 1H/1T bilayers and sandwiched 1H/1T/1H’ trilayers. The charge density wave order remaining in the 1T layer suppresses superconductivity in the 1H/1T superlattice. Our findings establish an in-situ, sequence-controllable phase engineering strategy for constructing bulk TMD hetero-phase homostructures and highlight stacking configuration as a powerful degree of freedom for designing TMD-based quantum materials and devices.

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Cite This Study

Ding et al. (2026) studied this question.

synapsesocial.com/papers/69f6e5308071d4f1bdfc5ec4https://doi.org/10.1093/nsr/nwag246
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