| Literature DB >> 35522708 |
Youngjun Ahn1,2, Mathew J Cherukara3, Zhonghou Cai1, Michael Bartlein3, Tao Zhou3, Anthony DiChiara1, Donald A Walko1, Martin Holt3, Eric E Fullerton4, Paul G Evans2, Haidan Wen1,5.
Abstract
SignificancePhase transitions, the changes between states of matter with distinct electronic, magnetic, or structural properties, are at the center of condensed matter physics and underlie valuable technologies. First-order phase transitions are intrinsically heterogeneous. When driven by ultrashort excitation, nanoscale phase regions evolve rapidly, which has posed a significant experimental challenge to characterize. The newly developed laser-pumped X-ray nanodiffraction imaging technique reported here has simultaneous 100-ps temporal and 25-nm spatial resolutions. This approach reveals pathways of the nanoscale structural rearrangement upon ultrafast optical excitation, different from those transitions under slowly varying parameters. The spatiotemporally resolved structural characterization provides crucial nanoscopic insights into ultrafast phase transitions and opens opportunities for controlling nanoscale phases on ultrafast time scales.Entities:
Keywords: magnetic film; nanoscopic imaging; phase transition; structural dynamics
Year: 2022 PMID: 35522708 PMCID: PMC9171639 DOI: 10.1073/pnas.2118597119
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 12.779