Oscillatory force autocorrelations in equilibrium odd-diffusive systems
arXiv:2302.01263 · doi:10.1103/PhysRevLett.132.057102
Abstract
The force autocorrelation function (FACF), a concept of fundamental interest in statistical mechanics, encodes the effect of interactions on the dynamics of a tagged particle. In equilibrium, the FACF is believed to decay monotonically in time which is a signature of slowing down of the dynamics of the tagged particle due to interactions. Here we analytically show that in odd-diffusive systems, which are characterized by a diffusion tensor with antisymmetric elements, the FACF can become negative and even exhibit temporal oscillations. We also demonstrate that, despite the isotropy, the knowledge of FACF alone is not sufficient to describe the dynamics: the full autocorrelation tensor is required and contains an antisymmetric part. These unusual properties translate into enhanced dynamics of the tagged particle quantified via the self-diffusion coefficient that, remarkably, increases due to particle interactions.
References in corpus (13)
- Advances in the Physics of Magnetic Skyrmions and Perspective for Technology
- Dynamics of a Brownian circle swimmer
- Inertia, diffusion and dynamics of a driven skyrmion
- Anisotropic memory effects in confined colloidal diffusion
- Magnetizing a complex plasma without a magnetic field
- Crossover in the Slow Decay of Dynamic Correlations in the Lorentz Model
- Brownian motion of massive skyrmions forced by spin polarized currents
- Analytic Solution of an Active Brownian Particle in a Harmonic Well
- Persistent memory for a Brownian walker in a random array of obstacles
- Time-Dependent Fluctuations and Superdiffusivity in the Driven Lattice Lorentz Gas
- Green-Kubo approach to the average swim speed in active Brownian systems
- Persistent anti-correlations in Brownian dynamics simulations of dense colloidal suspensions revealed by noise suppression
- Time-dependent active microrheology in dilute colloidal suspensions
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- Anomalous grain dynamics and grain locomotion of odd crystals
- Active Transport of Cargo-Carrying and Interconnected Chiral Particles
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- Reversal of tracer advection and Hall drift in an interacting chiral fluid
- Nonlinear Langevin functionals for a driven probe
- Dumbbell dimer dynamics in three-dimensional chiral fluids
- Kinetic Theory of Chiral Active Disks: Odd Transport and Torque Density
- Edge states, pairing, and sorting of motile chiral particles
- Boundary-Induced Drift and Negative Mobility in Constrained Stochastic Systems
- When velocity autocorrelations mirror force autocorrelations: Exact noise-cancellation in interacting Brownian systems