English

Ionic liquid gating induced self-intercalation of transition metal chalcogenides

Materials Science 2023-08-28 v1

Abstract

Ionic liquids provide versatile pathways for controlling the structures and properties of quantum materials. Previous studies have reported electrostatic gating of nanometre-thick flakes leading to emergent superconductivity, insertion or extraction of protons and oxygen ions in perovskite oxide films enabling the control of different phases and material properties, and intercalation of large-sized organic cations into layered crystals giving access to tailored superconductivity. Here, we report an ionic-liquid gating method to form three-dimensional transition metal monochalcogenides (TMMCs) by driving the metals dissolved from layered transition metal dichalcogenides (TMDCs) into the van der Waals gap. We demonstrate the successful self-intercalation of PdTe2_2 and NiTe2_2, turning them into high-quality PdTe and NiTe single crystals, respectively. Moreover, the monochalcogenides exhibit distinctive properties from dichalcogenides. For instance, the self-intercalation of PdTe2_2 leads to the emergence of superconductivity in PdTe. Our work provides a synthesis pathway for TMMCs by means of ionic liquid gating driven self-intercalation.

Keywords

Cite

@article{arxiv.2308.13402,
  title  = {Ionic liquid gating induced self-intercalation of transition metal chalcogenides},
  author = {Fei Wang and Yang Zhang and Zhijie Wang and Haoxiong Zhang and Xi Wu and Changhua Bao and Jia Li and Pu Yu and Shuyun Zhou},
  journal= {arXiv preprint arXiv:2308.13402},
  year   = {2023}
}
R2 v1 2026-06-28T12:04:21.230Z