Time-resolved probing of laser-induced nanostructuring processes in liquids
Status PubMed-not-MEDLINE Language English Country Germany Media electronic-ecollection
Document type Journal Article, Review
PubMed
40625376
PubMed Central
PMC12230332
DOI
10.3762/bjnano.16.74
Knihovny.cz E-resources
- Keywords
- X-ray scattering, electron diffraction, laser processing in liquids, optical imaging, optical spectroscopy, pump–probe, single objects, time-resolved probing,
- Publication type
- Journal Article MeSH
- Review MeSH
Laser synthesis and processing of colloids (LSPC) in liquids has gained widespread applications in producing nanomaterials of different classes of solids. While the technical processes in different cases of ablation, fragmentation or colloidal fusion may look macroscopically different in each application, the underlying fundamental mechanisms are always the same cascade of laser interaction with matter, non-thermal or thermal energy deposition, phase transitions, and the subsequent structure formation processes. Disentangling these mechanisms represents a veritable challenge, as ultrafast and structurally sensitive experimental methods are required. This review presents a discussion of how state-of-the-art experimental protocols using ultrafast lasers and sensitive structural probes, such as electrons or X-rays are able to address this challenge. In particular, it is possible to investigate LSPC on single objects using single probe pulses and avoid accumulation effects in a heterogeneous sample. The presented results capture structure formation with femtosecond and atomic scale resolution. Ultrafast time-resolved probing approaches are key to revealing the transient states and pathways that govern material transformation in LSPC.
Department of Physics POSTECH Pohang 37673 Korea
Laser Center Hochschule Munich Munich University of Applied Sciences Lothstr 34 80335 Munich Germany
New Technologies Research Center University of West Bohemia Plzen CZ 30100 Czech Republic
SLAC National Accelerator Laboratory Menlo Park 94025 CA USA
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