English

Proton-driven patterning of bulk transition metal dichalcogenides

Materials Science 2022-06-10 v2

Abstract

At the few-atom-thick limit, transition metal dichalcogenides (TMDs) exhibit a host of attractive electronic optical, and structural properties. The possibility to pattern these properties has a great impact on applied and fundamental research. Here, we demonstrate spatial control over the light emission, lattice deformation, and hydrogen storage in bulk TMDs. By low-energy proton irradiation, we create uniquely favorable conditions for the production and accumulation of molecular hydrogen just one or few monolayers beneath the crystal basal plane of bulk WS2, WSe2, WTe2, MoSe2, and MoS2 samples. H2 therein produced coalesces to form bubbles, which lead to the localized swelling of one X-M-X plane prevalently. This results eventually in the creation of atomically thin domes filled with molecular hydrogen at 10 atm. The domes emit light strongly well above room temperature and can store H2 indefinitely. They can be produced with the desired density, well-ordered positions, and size tunable from the nanometer to the micrometer scale, thus providing a template for the manageable and durable mechanical and electronic structuring of two-dimensional materials.

Keywords

Cite

@article{arxiv.1803.09825,
  title  = {Proton-driven patterning of bulk transition metal dichalcogenides},
  author = {Davide Tedeschi and Marco Felici and Giorgio Pettinari and Elena Blundo and Elisa Petroni and Simona Sennato and Christopher Zhang and Yuerui Lu and Antonio Polimeni},
  journal= {arXiv preprint arXiv:1803.09825},
  year   = {2022}
}
R2 v1 2026-06-23T01:05:46.121Z