Motility and Energetics of Randomly Flashing Ratchets
arXiv:2002.12796 · doi:10.1088/1742-5468/abe597
Abstract
We consider a randomly flashing ratchet, where the potential acting can be switched to another at random. Using coupled Fokker-Planck equations, we formulate the expressions of quantities measuring dynamics and thermodynamics. Extended numerical calculations present how the potential landscapes and the transitions affect the motility and energetics. Load-dependent velocity and energetic efficiency of motor proteins, kinesin and dynein, further exemplify the randomly flashing ratchet model. We also discuss the system with two shifted sawtooth potentials.
References in corpus (5)
- Artificial Brownian motors: Controlling transport on the nanoscale
- Feedback control in a collective flashing ratchet
- Brownian motors: current fluctuations and rectification efficiency
- Enhanced thermodynamic efficiency in time asymmetric ratchets
- Diffusion Enhancement of Brownian Motors Revealed by a Solvable Model