Novel Type of Phase Transition in a System of Self-Driven Particles

Tamás Vicsek, András Czirók, Eshel Ben-Jacob, Inon Cohen, and Ofer Shochet
Phys. Rev. Lett. 75, 1226 – Published 7 August 1995
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Abstract

A simple model with a novel type of dynamics is introduced in order to investigate the emergence of self-ordered motion in systems of particles with biologically motivated interaction. In our model particles are driven with a constant absolute velocity and at each time step assume the average direction of motion of the particles in their neighborhood with some random perturbation (η) added. We present numerical evidence that this model results in a kinetic phase transition from no transport (zero average velocity, |va|=0) to finite net transport through spontaneous symmetry breaking of the rotational symmetry. The transition is continuous, since |va| is found to scale as (ηcη)β with β0.45.

  • Received 25 April 1994

DOI:https://doi.org/10.1103/PhysRevLett.75.1226

©1995 American Physical Society

Authors & Affiliations

Tamás Vicsek1,2, András Czirók1, Eshel Ben-Jacob3, Inon Cohen3, and Ofer Shochet3

  • 1Department of Atomic Physics, Eötvös University, Budapest, Puskin u 5-7, 1088 Hungary
  • 2Institute for Technical Physics, Budapest, P.O.B. 76, 1325 Hungary
  • 3School of Physics, Tel-Aviv University, 69978 Tel-Aviv, Israel

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Vol. 75, Iss. 6 — 7 August 1995

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