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Microsecond hydrodynamic interactions in dense colloidal dispersions probed at the European XFEL

Authors :
Francesco Dallari
Avni Jain
Marcin Sikorski
Johannes Möller
Richard Bean
Ulrike Boesenberg
Lara Frenzel
Claudia Goy
Jörg Hallmann
Yoonhee Kim
Irina Lokteva
Verena Markmann
Grant Mills
Angel Rodriguez-Fernandez
Wojciech Roseker
Markus Scholz
Roman Shayduk
Patrik Vagovic
Michael Walther
Fabian Westermeier
Anders Madsen
Adrian P. Mancuso
Gerhard Grübel
Felix Lehmkühler
Source :
IUCrJ, Vol 8, Iss 5, Pp 775-783 (2021)
Publication Year :
2021
Publisher :
International Union of Crystallography, 2021.

Abstract

Many soft-matter systems are composed of macromolecules or nanoparticles suspended in water. The characteristic times at intrinsic length scales of a few nanometres fall therefore in the microsecond and sub-microsecond time regimes. With the development of free-electron lasers (FELs) and fourth-generation synchrotron light-sources, time-resolved experiments in such time and length ranges will become routinely accessible in the near future. In the present work we report our findings on prototypical soft-matter systems, composed of charge-stabilized silica nanoparticles dispersed in water, with radii between 12 and 15 nm and volume fractions between 0.005 and 0.2. The sample dynamics were probed by means of X-ray photon correlation spectroscopy, employing the megahertz pulse repetition rate of the European XFEL and the Adaptive Gain Integrating Pixel Detector. We show that it is possible to correctly identify the dynamical properties that determine the diffusion constant, both for stationary samples and for systems driven by XFEL pulses. Remarkably, despite the high photon density the only observable induced effect is the heating of the scattering volume, meaning that all other X-ray induced effects do not influence the structure and the dynamics on the probed timescales. This work also illustrates the potential to control such induced heating and it can be predicted with thermodynamic models.

Details

Language :
English
ISSN :
20522525
Volume :
8
Issue :
5
Database :
Directory of Open Access Journals
Journal :
IUCrJ
Publication Type :
Academic Journal
Accession number :
edsdoj.626d1c44cece4766ba19968fa6a7c445
Document Type :
article
Full Text :
https://doi.org/10.1107/S2052252521006333