Femtosecond-resolved imaging of a single-particle phase transition in energy-filtered ultrafast electron microscopy
Creators
Abstract
Using an energy filter in transmission electron microscopy has enabled elemental mapping at the atomic scale and improved the precision of structural determination by gating inelastic and elastic imaging electrons, respectively. Here, we use an energy filter in ultrafast electron microscopy to enhance the temporal resolution toward the domain of atomic motion. Visualizing transient structures with femtosecond temporal precision was achieved by selecting imaging electrons in a narrow energy distribution from dense chirped photoelectron packets with broad longitudinal momentum distributions and thus typically exhibiting picosecond durations. In this study, the heterogeneous ultrafast phase transitions of vanadium dioxide (VO₂) nanoparticles, a representative strongly correlated system, were filmed and attributed to the emergence of a transient, low-symmetry metallic phase caused by different local strains. Our approach enables electron microscopy to access the time scale of elementary nuclear motion to visualize the onset of the structural dynamics of matter at the nanoscale.
Additional Information
© 2023 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution License 4.0 (CC BY). This work was supported by Samsung Science and Technology Foundation under project number SSTF-BA1901-06 and by the Institute for Basic Science (IBS-R020-D1), Korea. We thank the supercomputing resources of the UNIST Supercomputing Center. S.J. and J.W. acknowledge support from the Knut and Alice Wallenberg Foundation (2012.0321 and 2018.0104) and the Swedish Research Council (VR). Author contributions: O.-H.K. conceived and supervised the project. Y.-J.K. and O.-H.K. designed the experiments. Y.-J.K. prepared the specimen with the support of H.L. Y.-J.K. performed the EFUEM experiments. Y.-J.K. and H.-W.N. performed the in situ experiments. Y.-J.K. conducted numerical simulations with the support of S.J. Y.-J.K. and O.-H.K. analyzed the data and wrote the manuscript. All authors have read and edited the manuscript. Data and materials availability: All data needed to evaluate the conclusions in the paper are present in the paper and/or the Supplementary Materials. The authors declare that they have no competing interests.Attached Files
Published - sciadv.add5375.pdf
Supplemental Material - sciadv.add5375_movies_s1_to_s4.zip
Supplemental Material - sciadv.add5375_sm.pdf
Files
sciadv.add5375.pdf
Additional details
Identifiers
- PMCID
- PMC9882981
- Eprint ID
- 120247
- Resolver ID
- CaltechAUTHORS:20230321-821389800.46
Funding
- Samsung Science and Technology Foundation
- SSTF-BA1901-06
- Institute for Basic Science
- IBS-R020-D1
- Knut and Alice Wallenberg Foundation
- 2012.0321
- Knut and Alice Wallenberg Foundation
- 2018.0104
- Swedish Research Council
Dates
- Created
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2023-05-17Created from EPrint's datestamp field
- Updated
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2023-05-17Created from EPrint's last_modified field