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Controlling Flow Speeds of Microtubule-Based 3D Active Fluids Using Temperature
Published on: November 26, 2019
Shortcuts to state transitions for active matter
Guodong Cheng1, Z C Tu1,2, Geng Li3
1School of Physics and Astronomy, Beijing Normal University, Beijing 100875, China.
The Journal of Chemical Physics
|August 11, 2026
Summary
This study introduces a new shortcut framework for active systems, enabling faster transitions between states by using an auxiliary potential. This method minimizes energy dissipation, outperforming traditional linear protocols.
Area of Science:
- Statistical Mechanics
- Thermodynamics
- Active Matter Physics
Background:
- Shortcut schemes accelerate processes in passive systems by facilitating swift equilibrium state transitions.
- Active systems, driven by free energy consumption, inherently move away from equilibrium, posing challenges for rapid state changes.
Purpose of the Study:
- To develop a shortcut framework for achieving swift state transitions in active systems operating in the weak activity regime.
- To minimize the thermodynamic cost associated with finite-time state transitions in active systems.
Main Methods:
- Introduced an auxiliary potential to guide the active system along a predefined distribution path for finite-time transitions.
- Derived a thermodynamic metric from dissipative work, defining a Riemannian manifold on the control parameter space.
- Identified optimal protocols as geodesic paths on this manifold, minimizing dissipative work.
- Utilized a variational method to approximate the auxiliary control for systems where analytical derivation is not feasible.
Main Results:
- Demonstrated the framework's effectiveness for active systems in harmonic traps with both attractive and repulsive interactions.
- Showcased that geodesic protocols significantly reduce dissipation compared to linear protocols.
- The framework enables controlled, swift state transitions in active systems with controllable interaction strengths.
Conclusions:
- The developed shortcut framework provides an effective strategy for rapid state transitions in active systems.
- Geodesic paths derived from the Riemannian manifold minimize energy dissipation, offering a more efficient approach than linear protocols.
- The framework is adaptable, even for systems requiring approximate auxiliary controls via variational methods.
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