English

Equilibrium binding energies from fluctuation theorems and force spectroscopy simulations

Soft Condensed Matter 2021-01-08 v2 Statistical Mechanics

Abstract

Brownian dynamics simulations are used to study the detachment of a particle from a substrate. Although the model is simple and generic, we attempt to map its energy, length and time scales onto a specific experimental system, namely a bead that is weakly bound to a cell and then removed by an optical tweezer. The external driving force arises from the combined optical tweezer and substrate potentials, and thermal fluctuations are taken into account by a Brownian force. The Jarzynski equality and Crooks' fluctuation theorem are applied to obtain the equilibrium free energy difference between the final and initial states. To this end, we sample non--equilibrium work trajectories for various tweezer pulling rates. We argue that this methodology should also be feasible experimentally for the envisioned system. Furthermore, we outline how the measurement of a whole free energy profile would allow the experimentalist to retrieve the unknown substrate potential by means of a suitable deconvolution. The influence of the pulling rate on the accuracy of the results is investigated, and umbrella sampling is used to obtain the equilibrium probability of particle escape for a variety of trap potentials.

Keywords

Cite

@article{arxiv.1609.02285,
  title  = {Equilibrium binding energies from fluctuation theorems and force spectroscopy simulations},
  author = {Emma Hodges and B. M. Cooke and E. M. Sevick and Debra J. Searles and B. Duenweg and J. Ravi Prakash},
  journal= {arXiv preprint arXiv:1609.02285},
  year   = {2021}
}

Comments

21 pages, 11 figures, To appear in Soft Matter

R2 v1 2026-06-22T15:43:36.395Z