Published April 26, 2023 | Version Published + Supplemental Material
Journal Article Open

Tailoring Two-Dimensional Matter Using Strong Light–Matter Interactions

  • 1. ROR icon Ulsan National Institute of Science and Technology
  • 2. ROR icon Institute for Basic Science
  • 3. ROR icon Yonsei University
  • 4. ROR icon Korea University

Abstract

The shaping of matter into desired nanometric structures with on-demand functionalities can enhance the miniaturization of devices in nanotechnology. Herein, strong light–matter interaction was used as an optical lithographic tool to tailor two-dimensional (2D) matter into nanoscale architectures. We transformed 2D black phosphorus (BP) into ultrafine, well-defined, beyond-diffraction-limit nanostructures of ten times smaller size and a hundred times smaller spacing than the incident, femtosecond-pulsed light wavelength. Consequently, nanoribbons and nanocubes/cuboids scaling tens of nanometers were formed by the structured ablation along the extremely confined periodic light fields originating from modulation instability, the tailoring process of which was visualized in real time via light-coupled in situ transmission electron microscopy. The current findings on the controllable nanoscale shaping of BP will enable exotic physical phenomena and further advance the optical lithographic techniques for 2D materials.

Additional Information

© 2023 The Authors. Published by American Chemical Society. Attribution 4.0 International (CC BY 4.0). This work was supported by the Samsung Science and Technology Foundation under Project Number SSTF-BA1901-06. Y.-J.K. and O.-H.K. are grateful to the Institute for Basic Science (IBS-R020-D1), Korea, for the support of the direct electron-detection camera. Y.L. and K.K. acknowledge support from the Basic Science Research Program at the National Research Foundation of Korea (NRF-2019R1C1C1003643) and the Institute for Basic Science (IBS-R026-D1). Author Contributions. Y.-J.K. and O.-H.K. conceived the project and designed the experiments; Y.-J.K. and O.-H.K. performed the experiments; Q.-H.P. conducted numerical simulations; Y.L. and M.J. prepared the specimens; Y.-J.K., Q.-H.P., and O.-H.K. analyzed the data and prepared the manuscript; Y.-J.K. and W.T.C. prepared the Supporting Information. Y.-J.K. and W.-W.P. obtained the EEL spectra. All the authors contributed to the discussion and editing of the manuscript. The authors declare no competing financial interest.

Attached Files

Published - acs.nanolett.2c04467.pdf

Supplemental Material - nl2c04467_si_001.pdf

Supplemental Material - nl2c04467_si_002.mp4

Supplemental Material - nl2c04467_si_003.mp4

Supplemental Material - nl2c04467_si_004.mp4

Supplemental Material - nl2c04467_si_005.mp4

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Additional details

Identifiers

PMCID
PMC10141415
Eprint ID
120572
Resolver ID
CaltechAUTHORS:20230328-709109200.71

Funding

Samsung Science and Technology Foundation
SSTF-BA1901-06
Institute for Basic Science
IBS-R020-D1
National Research Foundation of Korea
NRF-2019R1C1C1003643
Institute for Basic Science
IBS-R026-D1

Dates

Created
2023-05-05
Created from EPrint's datestamp field
Updated
2023-05-05
Created from EPrint's last_modified field