Zhao Zhi, Kundu Rahul Dev, Sigmund Ole, Zhang Xiaojia Shelly
Department of Civil and Environmental Engineering, University of Illinois Urbana-Champaign, Urbana, IL 61801, USA.
Department of Civil and Mechanical Engineering, Technical University of Denmark, Koppels Allé, Building 404, 2800 Kongens Lyngby, Denmark.
Sci Adv. 2025 May 16;11(20):eadr6925. doi: 10.1126/sciadv.adr6925.
Biological materials such as seashell nacre exhibit extreme mechanical properties due to their multilayered microstructures. Collaborative interaction among these layers achieves performance beyond the capacity of a single layer. Inspired by these multilayer biological systems, we architect materials with free-form layered microstructures to program multistage snap-buckling and plateau responses-accomplishments challenging with single-layer materials. The developed inverse design paradigm simultaneously optimizes local microstructures within layers and their interconnections, enabling intricate layer interactions. Each layer plays a synergistic role in collectively achieving high-precision control over the desired extreme nonlinear responses. Through high-fidelity simulations, hybrid fabrication, and tailored experiments, we demonstrate complex responses fundamental to various functionalities, including energy dissipation and wearable devices. We orchestrate multisnapping phenomena from complex interactions between heterogeneous local architectures to encode and store information within architected materials, unlocking data encryption possibilities. These layered architected materials offer transformative advancements across diverse fields, including vibration control, wearables, and information encryption.
诸如贝壳珍珠层之类的生物材料由于其多层微观结构而展现出极端的力学性能。这些层之间的协同相互作用实现了超越单层能力的性能。受这些多层生物系统的启发,我们构建具有自由形式分层微观结构的材料,以实现多级快速屈曲和平台响应,这是单层材料难以实现的成就。所开发的逆向设计范式同时优化层内的局部微观结构及其互连,实现复杂的层间相互作用。每层在共同实现对所需极端非线性响应的高精度控制中发挥协同作用。通过高保真模拟、混合制造和定制实验,我们展示了各种功能所必需的复杂响应,包括能量耗散和可穿戴设备。我们通过异质局部结构之间的复杂相互作用精心编排多重快速屈曲现象,以在结构化材料中编码和存储信息,开启数据加密的可能性。这些分层结构化材料在包括振动控制、可穿戴设备和信息加密在内的各个领域都带来了变革性进展。