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Absolute negative mobility of an inertial Brownian particle in an oscillating potential
Jian-Chun Wu1, Feng Yang1, Tian-Wen Dong2
1School of Mechanical and Electronic Engineering, <a href="https://ror.org/01d0jcz74">Jingdezhen Ceramic University</a>, Jingdezhen 333403, China.
Abstract:
Transport of an inertial Brownian particle in an oscillating potential is numerically investigated in the presence of an external constant force. The oscillating potential can break thermodynamic equilibrium. Within appropriate parameter regimes, the particle moves in a direction opposite to the constant force, which means that the system can exhibit the phenomenon of absolute negative mobility (ANM). Furthermore, it may be inferred from the bifurcation diagrams that ANM originates from chaotic-periodic transitions, where the particle subjected to a constant force performs reverse periodic motion due to continuous reverse driving by the oscillating potential. Based on GPU acceleration techniques, we present the distribution of ANM in the parameter space and analyze how the ANM depends on the system parameters. These results are robust in a wide range of parameters and may pave the way to the experimental realization of ANM.
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