Related Experiment Video
Updated: Feb 13, 2026

Design and Optimization Strategies of a High-Performance Vented Box
Published on: June 9, 2023
Design principles and optimal performance for molecular motors under realistic constraints
1IBM T.J. Watson Research Center, Yorktown Heights, New York 10598, USA.
Abstract:
The performance of a molecular motor, characterized by its power output and energy efficiency, is investigated in the motor design space spanned by the stepping rate function and the motor-track interaction potential. Analytic results and simulations show that a gating mechanism that restricts forward stepping in a narrow window in configuration space is needed for generating high power at physiologically relevant loads. By deriving general thermodynamics laws for nonequilibrium motors, we find that the maximum torque (force) at stall is less than its theoretical limit for any realistic motor-track interactions due to speed fluctuations. Our study reveals a tradeoff for the motor-track interaction: while a strong interaction generates a high power output for forward steps, it also leads to a higher probability of wasteful spontaneous back steps. Our analysis and simulations show that this tradeoff sets a fundamental limit to the maximum motor efficiency in the presence of spontaneous back steps, i.e., loose-coupling. Balancing this tradeoff leads to an optimal design of the motor-track interaction for achieving a maximum efficiency close to 1 for realistic motors that are not perfectly coupled with the energy source. Comparison with existing data and suggestions for future experiments are discussed.
Related Concept Videos
Design Example: Application of Archimedes' Principle
The volume of seawater displaced by the block is determined by first calculating the block's weight. This is done by multiplying the...
Molecular Models
Constraints and Statical Determinacy
The Uncertainty Principle
Hardy-Weinberg Principle
The Pauli Exclusion Principle

