English

Mechanical non-reciprocity programmed by shear jamming in soft composite solids

Soft Condensed Matter 2025-11-17 v2 Applied Physics

Abstract

Mechanical non-reciprocity-manifested as asymmetric responses to opposing mechanical stimuli-has traditionally been achieved through intricate structural nonlinearities in metamaterials. However, continuum solids with inherent non-reciprocal mechanics remain underexplored, despite their promising potential for applications such as wave guiding, robotics, and adaptive materials. Here, we introduce a design principle by employing the shear jamming transition from granular physics to engineer non-reciprocal mechanics in soft composite solids. Through the control of the interplay between inclusion contact networks and matrix elasticity, we achieve tunable, direction-dependent asymmetry in both shear and normal mechanical responses. In addition to static regimes, we demonstrate programmable non-reciprocal dynamics by combining responsive magnetic profiles with the anisotropic characteristics of shear-jammed systems. This strategy enables asymmetric spatiotemporal control over motion transmission, a previously challenging feat in soft materials. Our work establishes a novel paradigm for designing non-reciprocal matter, bridging granular physics with soft material engineering to realize functionalities essential for mechano-intelligent systems.

Keywords

Cite

@article{arxiv.2502.17083,
  title  = {Mechanical non-reciprocity programmed by shear jamming in soft composite solids},
  author = {Chang Xu and Shuaihu Wang and Hong Wang and Xu Liu and Zemin Liu and Yiqiu Zhao and Wenqi Hu and Qin Xu},
  journal= {arXiv preprint arXiv:2502.17083},
  year   = {2025}
}
R2 v1 2026-06-28T21:55:23.507Z