Autonomous waves and global motion modes in living active solids

ORAL

Abstract

Elastic active matter or active solid consists of self-propelled units embedded in an elastic matrix. Active solid resists deformation; the shape-preserving property and the intrinsic non-equilibrium nature make active solids a superior component for self-driven devices. Nonetheless, the mechanical properties and emergent behavior of active solids are poorly understood. Using a biofilm-based bacterial active solid, here we discovered self-sustained elastic waves with unique wave properties not seen in passive solids, such as power-law scaling of wave speed with activity. Under isotropic confinement, the active solid develops two topologically distinct global motion modes that can be selectively excited, with a surprising step-like frequency jump at mode transition. Our findings reveal novel spatiotemporal order in elastic active matter and may guide the development of solid-state adaptive or living materials.

*This work was supported by the National Natural Science Foundation of China (NSFC No. 31971182, to Y.W.), the Research Grants Council of Hong Kong SAR (RGC Ref. No. RFS2021-4S04, 14306820, 14306820; to Y.W.). R.Z. acknowledges financial support from Research Grants Council of Hong Kong SAR (Ref. No. 16300221

Publication: https://arxiv.org/pdf/2208.09664.pdf

Presenters

  • Haoran Xu

    • Chinese University of Hong Kong

Authors

  • Haoran Xu

    • Chinese University of Hong Kong
  • Yulu HUANG

    • HKUST
  • Rui Zhang

    • HKUST
    • The Hong Kong University of Science and
    • Hong Kong University of Science and Technology
    • The Hong Kong University of Science and Technology
  • Yilin Wu

    • The Chinese University of Hong Kong
    • Chinese University of Hong Kong
    • The Chinese University of Honng Kong