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Arrhenius law for interacting diffusive systems.
Vishwajeet Kumar1,2, Arnab Pal1,2, Ohad Shpielberg3,4
1The Institute of Mathematical Sciences, CIT Campus, Taramani, Chennai 600113, India.
Excluded volume effects in particle escape dynamics reveal a new universality class. This class alters escape rates, showing independence from particle interactions, offering insights into chemical physics.
Area of Science:
- Statistical Physics
- Chemical Physics
- Nonequilibrium Systems
Background:
- Understanding particle escape from metastable states is crucial across physics, chemistry, and biology.
- Thermal fluctuations drive particle escape, a process fundamental to many scientific disciplines.
Purpose of the Study:
- To investigate the escape rate of interacting diffusive particles from potential traps.
- To analyze the impact of excluded volume interactions on particle escape dynamics using macroscopic fluctuation theory.
Main Methods:
- Utilized macroscopic fluctuation theory, a nonequilibrium hydrodynamic framework.
- Studied interacting diffusive particles in a deep potential trap.
- Compared escape rates in systems with and without excluded volume effects.
Main Results:
- Systems without excluded volume follow the established Arrhenius law for particle escape.
- The presence of excluded volume introduces a new universality class, significantly modifying the escape rate.
- Within this universality class, the escape rate becomes independent of inter-particle interactions.
Conclusions:
- Excluded volume effects are critical in determining particle escape rates, leading to a distinct universality class.
- The discovered universality class offers new perspectives for interpreting escape processes in chemical physics.
- The interaction-independent nature of the escape rate in this class highlights the dominant role of excluded volume.
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