This paper presents a scalable modular structure composed of cuboctahedral units that can be selectively disassembled using a single, remote vibration source. Each module features self-locking intra-connectors for load-bearing assembly, together with inter-connectors designed for geometrically programmable, vibration-triggered disassembly. Rather than requiring embedded electronics, our system leverages the propagation of mechanical waves to enable targeted detachment anywhere in the structure from a single vibration source. Mechanical testing reveals that external vibration reduces the effective friction coefficient at inter-connectors, providing the physical basis for their remote disassembly. Leveraging this insight, we construct a surrogate model that systematically maps connector geometry to their disassembly properties, thereby enabling inverse design of inter-connectors with tailored triggering power and release energy. We further demonstrate this remote disassembly protocol across diverse applications-including staged deployment, underwater disassembly, load-bearing collapse, and three-dimensional deployment in large structures-highlighting its robustness, simplicity, and suitability for responsive, electronics-free modular systems.
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Xinyi Yang
Georgia Institute of Technology
Martin Nisser
University of Washington
Víctor Riera Naranjo
Georgia Institute of Technology
Nature Communications
University of Washington
Georgia Institute of Technology
American Institute of Aeronautics and Astronautics
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Yang et al. (Tue,) studied this question.
synapsesocial.com/papers/69fd7ddcbfa21ec5bbf061d5 — DOI: https://doi.org/10.1038/s41467-026-72722-z
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