Dynamic scaling theory for a field quench near the Kasteleyn transition

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Publication date
2025-06-06Creators
Powell, Stephen
Pal, Sukla
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We present a dynamic scaling theory to describe relaxation dynamics following a magnetic-field quench near an unconventional phase transition in the magnetic material spin ice. Starting from a microscopic model, we derive an effective description for the critical dynamics in terms of the seeding and growth of string excitations, and use this to find scaling forms in terms of time, reduced temperature and monopole fugacity. We confirm the predictions of scaling theory using Monte Carlo simulations, which also show good quantitative agreement with analytical expressions valid in the limit of low monopole density. As well as being relevant for experiments in the spin ice materials, our results open the way for the study of dynamic critical properties in a family of unconventional classical phase transitions.
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Subjects
- Monte Carlo method
- Dynamics
- Applied dynamics
- Magnetics
- Monte Carlo, dynamics, spin ice
- Physical sciences::Physics
- Q Science::QC Physics
Divisions
- University of Nottingham, UK Campus::Faculty of Science::School of Physics and Astronomy
Deposit date
2025-06-06Data type
Results of Monte Carlo simulationsFunders
- Engineering & Physical Sciences Research Council
Grant number
- EP/T021691/1
Collection dates
- September 2021 to May 2025
Data collection method
Monte Carlo simulationsResource languages
- en
