Melting Domain Size and Recrystallization Dynamics of Ice Revealed by Time-Resolved X-ray Scattering

Fuente: arXiv
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Hauptverfasser: Yang, Cheolhee, Ladd-Parada, Marjorie, Nam, Kyeongmin, Jeong, Sangmin, You, Seonju, Späh, Alexander, Pathak, Harshad, Eklund, Tobias, Lane, Thomas J., Lee, Jae Hyuk, Eom, Intae, Kim, Minseok, Winkel, Katrin Amann-, Perakis, Fivos, Nilsson, Anders, Kim, Kyung Hwan
Format: Preprint
Veröffentlicht: 2023
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author Yang, Cheolhee
Ladd-Parada, Marjorie
Nam, Kyeongmin
Jeong, Sangmin
You, Seonju
Späh, Alexander
Pathak, Harshad
Eklund, Tobias
Lane, Thomas J.
Lee, Jae Hyuk
Eom, Intae
Kim, Minseok
Winkel, Katrin Amann-
Perakis, Fivos
Nilsson, Anders
Kim, Kyung Hwan
author_facet Yang, Cheolhee
Ladd-Parada, Marjorie
Nam, Kyeongmin
Jeong, Sangmin
You, Seonju
Späh, Alexander
Pathak, Harshad
Eklund, Tobias
Lane, Thomas J.
Lee, Jae Hyuk
Eom, Intae
Kim, Minseok
Winkel, Katrin Amann-
Perakis, Fivos
Nilsson, Anders
Kim, Kyung Hwan
contents The phase transition between water and ice is ubiquitous and one of the most important phenomena in nature. Here, we performed time-resolved x-ray scattering experiments capturing the melting and recrystallization dynamics of ice. The ultrafast heating of ice I is induced by an IR laser pulse and probed with an intense x-ray pulse, which provided us with direct structural information on different length scales. From the wide-angle x-ray scattering (WAXS) patterns, the molten fraction, as well as the corresponding temperature at each delay, were determined. The small-angle x-ray scattering (SAXS) patterns, together with the information extracted from the WAXS analysis, provided the time-dependent change of the size and the number of the liquid domains. The results show partial melting (~13 %) and superheating of ice occurring at around 20 ns. After 100 ns, the average size of the liquid domains grows from about 2.5 nm to 4.5 nm by the coalescence of approximately six adjacent domains. Subsequently, we capture the recrystallization of the liquid domains, which occurs on microsecond timescales due to the cooling by heat dissipation and results to a decrease of the average liquid domain size.
format Preprint
id arxiv_https___arxiv_org_abs_2302_03368
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Melting Domain Size and Recrystallization Dynamics of Ice Revealed by Time-Resolved X-ray Scattering
Yang, Cheolhee
Ladd-Parada, Marjorie
Nam, Kyeongmin
Jeong, Sangmin
You, Seonju
Späh, Alexander
Pathak, Harshad
Eklund, Tobias
Lane, Thomas J.
Lee, Jae Hyuk
Eom, Intae
Kim, Minseok
Winkel, Katrin Amann-
Perakis, Fivos
Nilsson, Anders
Kim, Kyung Hwan
Chemical Physics
The phase transition between water and ice is ubiquitous and one of the most important phenomena in nature. Here, we performed time-resolved x-ray scattering experiments capturing the melting and recrystallization dynamics of ice. The ultrafast heating of ice I is induced by an IR laser pulse and probed with an intense x-ray pulse, which provided us with direct structural information on different length scales. From the wide-angle x-ray scattering (WAXS) patterns, the molten fraction, as well as the corresponding temperature at each delay, were determined. The small-angle x-ray scattering (SAXS) patterns, together with the information extracted from the WAXS analysis, provided the time-dependent change of the size and the number of the liquid domains. The results show partial melting (~13 %) and superheating of ice occurring at around 20 ns. After 100 ns, the average size of the liquid domains grows from about 2.5 nm to 4.5 nm by the coalescence of approximately six adjacent domains. Subsequently, we capture the recrystallization of the liquid domains, which occurs on microsecond timescales due to the cooling by heat dissipation and results to a decrease of the average liquid domain size.
title Melting Domain Size and Recrystallization Dynamics of Ice Revealed by Time-Resolved X-ray Scattering
topic Chemical Physics
url https://arxiv.org/abs/2302.03368