Bone-Inspired Self-Adaptive Material and Its Application for Reprogrammable and Reversible Self-Folding Structures

ORAL

Abstract

Adaptability is one of the hallmarks of living systems that provide resilience in a dynamically changing environment. I will present our efforts to study mechanically adaptive materials for dynamically changing loading environments by coupling stress with material synthesis. We are inspired by the findings that bones are formed by mineralizing ions from blood onto collagen matrices. I will present a material system that triggers proportional mineral deposition from electrolytes on matrices upon mechanical loadings. For example, the mineralization rate could be modulated by controlling the loading condition, and a 30-180% increase in the modulus of the material was observed upon cyclic loadings. The mineral growth shows a self-limiting behavior tunable by force, which we could model analytically. To expand the environment where the material can be utilized, we investigated the synthesis of liquid-infused porous piezoelectric composites inspired by bone and pitcher plants. I will present our synthesis approach and resulting properties. The material showed 36 times increase in modulus and 30 times increase in dissipation after 12 million loading cycles. I will also present our approach for reprogrammable self-configurable structures based on the material by controlling the modulus distribution through the applied loading. We envision that our findings can contribute to new strategies for making resilient materials for dynamically changing mechanical environments.

*This work was supported by the Air Force Office of Scientific Research Grants (Award numbers: FA9550-18-1-0073 and FA9550-21-1-0368), Hanwha Non-Tenured Faculty Award, KAIST Start-Up Fund, and Brain Pool Plus Program through the National Research Foundation of Korea funded by the Ministry of Science, ICT & Future Planning (No. RS-2024-00439827). Any opinions, finding, and conclusions or recommendations expressed in this material are those of the author(s) and do not necessarily reflect the views of the United States Air Force.

Publication: 1. S. Orrego, Z. Chen, U. Krekora, D. Hou, S.-Y Jeon, M. Pittman, C. Montoya, Y. Chen, S. H. Kang, "Bioinspired Materials with Self-Adaptable Mechanical Properties," Advanced Materials, 32, 1906970 (2020).

2. G. Kitchen, B. Sun, M. M. Omar, A. Eisape, S. H. Kang, "Self-Limiting Material Growth Triggered and Tunable by Force Through Piezocharge-induced Mineralization," Materials Horizons, https://doi.org/10.1039/D4MH00498A.

3. G. Kitchen, B. Sun, S. H. Kang, "Bioinspired Nanocomposites with Self-Adaptive Mechanical Properties," Nano Research, 17, 633 (2024).

Presenters

  • Sung H Kang

    • Korea Advanced Institute of Science and Technology

Authors

  • Sung H Kang

    • Korea Advanced Institute of Science and Technology