TY - JOUR
T1 - 3D polycatenated architected materials
AU - Zhou, Wenjie
AU - Nadarajah, Sujeeka
AU - Li, Liuchi
AU - Izard, Anna Guell
AU - Yan, Hujie
AU - Prachet, Aashutosh K.
AU - Patel, Payal
AU - Xia, Xiaoxing
AU - Daraio, Chiara
N1 - We thank M. L. Hunt, R. X. Fu, T. Zhou, and J. Boddapati for discussions. Funding: W.Z. and C.D. acknowledge support from the Gary Clinard Innovation Fund and the Army Research Office (MURI ARO W911NF-22-2-0109). Computational resources were provided by the High-Performance Computing Center at Caltech. A.G.I. and X.X. acknowledge the financial support from Lawrence Livermore National Laboratory’s (LLNL) Lab Directed Research and Development Program (22-ERD-004). Work at LLNL was performed under the auspices of the US Department of Energy by LLNL under contract DE-AC52-07NA27344. Author contributions: W.Z. and S.N. contributed equally. W.Z. and C.D. conceived the idea. W.Z. designed the structures and fabricated the samples. W.Z., S.N., and C.D. designed the experiments. S.N., W.Z., A.K.P., and P.P. performed the experiments and analyzed experimental data. L.L. and H.Y. performed numerical simulations and analyzed simulation data. X.X. and W.Z designed the microscale experiments. X.X. and A.G.I. fabricated and tested microscale samples. W.Z. and C.D. wrote the initial draft. All authors interpreted the results and reviewed the manuscript. Competing interests: The authors declare that they have no competing interests. Data and materials availability: All data are available in the main text or the supplementary materials. Other information related to this study is available from the corresponding author upon reasonable request. License information: Copyright © 2025 the authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original US government works. https://www.science.org/about/science-licenses-journal-article-reuse
PY - 2025/1/17
Y1 - 2025/1/17
N2 - Architected materials derive their properties from the geometric arrangement of their internal structural elements. Their designs rely on continuous networks of members to control the global mechanical behavior o the bulk. In this study, we introduce a class of materials that consist of discrete concatenated rings or cage particles interlocked in three-dimensional networks, forming polycatenated architected materials (PAMs). W propose a general design framework that translates arbitrary crystalline networks into particle concatenation and geometries. In response to small external loads, PAMs behave like non-Newtonian fluids, showing both shear-thinning and shear-thickening responses, which can be controlled by their catenation topologies. At larger strains, PAMs behave like lattices and foams, with a nonlinear stress-strain relation. At microscale, we demonstrate that PAMs can change their shapes in response to applied electrostatic charges. The distinctiv properties of PAMs pave the path for developing stimuli-responsive materials, energy-absorbing systems, and morphing architectures.
AB - Architected materials derive their properties from the geometric arrangement of their internal structural elements. Their designs rely on continuous networks of members to control the global mechanical behavior o the bulk. In this study, we introduce a class of materials that consist of discrete concatenated rings or cage particles interlocked in three-dimensional networks, forming polycatenated architected materials (PAMs). W propose a general design framework that translates arbitrary crystalline networks into particle concatenation and geometries. In response to small external loads, PAMs behave like non-Newtonian fluids, showing both shear-thinning and shear-thickening responses, which can be controlled by their catenation topologies. At larger strains, PAMs behave like lattices and foams, with a nonlinear stress-strain relation. At microscale, we demonstrate that PAMs can change their shapes in response to applied electrostatic charges. The distinctiv properties of PAMs pave the path for developing stimuli-responsive materials, energy-absorbing systems, and morphing architectures.
UR - https://www.scopus.com/pages/publications/85216046955
UR - https://www.scopus.com/pages/publications/85216046955#tab=citedBy
U2 - 10.1126/science.adr9713
DO - 10.1126/science.adr9713
M3 - Article
C2 - 39818892
AN - SCOPUS:85216046955
SN - 0036-8075
VL - 387
SP - 269
EP - 277
JO - Science
JF - Science
IS - 6731
ER -