arXiv · 2608.23003
Displacement-field-driven reconstruction of low energy transport in few-layer PtSe2
Abstract
In layered semiconductors, a perpendicular displacement field generates an interlayer potential difference that competes with interlayer hybridization, modifying both the band gap and the finite-density electronic states that carry current. Resolving this interplay requires a material lying close to the semiconductor-to-semimetal transition, where moderate electric fields can strongly reshape the low-energy electronic structure. Here, we investigate displacement-field-driven transport in dual-gated semiconducting PtSe2, whose pronounced thickness-dependent electronic structure provides access to this low-band-gap regime. Unlike thinner layers, the displacement-field response is strong in six-layer PtSe2, which lies at the verge of the semiconductor-to-semimetal crossover with only a small residual transport gap. Even weak displacement fields rapidly suppress this residual gap near charge neutrality, driving the system toward a band-overlap regime. At the same time, the conductivity decreases in the heavily hole-doped regime, demonstrating that the displacement field modifies not only the gap but also the conducting valence-band states. Fixed-relaxation-time Wannier transport calculations reproduce both responses, showing that they originate from field-induced band overlap together with reconstruction of the valence-band dispersion. These results establish finite-density transport as a sensitive probe of displacement-field-driven electronic structure reconstruction and extend electrical control beyond conventional band-gap engineering.
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Xiao Liu, Yaroslav Zhumagulov, Yuang Jie, Ahmet Enes Bozcali, Johan Felisaz, Qi Zhang, Oldvrich Cicvarek, Kenji Watanabe, Takashi Taniguchi, Zdeněk Sofer, Oleg V. Yazyev, Ahmet Avsar. 2026-08-24. Displacement-field-driven reconstruction of low energy transport in few-layer PtSe2. https://arxiv.org/abs/2608.23003
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