TY - JOUR
T1 - Auxetic structures for energy absorption
T2 - A review on design, manufacturing, optimization, and applications
AU - Gao, Qiang
AU - Ni, Xihai
AU - Liu, Runrui
AU - Luo, Huichen
AU - Zhou, Jianzhong
AU - Su, Yonglei
AU - Tang, Yunlong
AU - Dong, Fangzhou
AU - Wang, Xiaoyu
AU - Liao, Wei Hsin
N1 - Publisher Copyright:
© The Author(s) 2025
PY - 2026
Y1 - 2026
N2 - Auxetic structures, distinguished by their unique deformation behaviors, exhibit remarkable mechanical properties, including superior energy absorption capacity, high indentation resistance, enhanced toughness, and excellent surface conformability. Compared to conventional honeycomb or foam materials, auxetic configurations can reduce peak stress by 20%–40%, extend the stress plateau by up to 60%, and enhance densification resistance by over 30%, making them highly suitable for impact, blast, and crash energy mitigation. This review systematically summarizes recent developments in the design, optimization, and manufacturing of auxetic structures for energy absorption purpose. Among various unit-cell topologies, modified re-entrant offer high specific energy absorption under quasi-static loading, while rotating and hierarchical designs demonstrate superior performance in multi-directional and dynamic scenarios. Optimization strategies, ranging from topology optimization to surrogate-assisted machine learning, enable precise tailoring of energy absorption profiles. Additionally, advances in additive manufacturing and modular assembly facilitate the scalable fabrication of complex auxetic geometries. This review highlights the correlations between structural features and energy absorption efficiency and proposes guidelines for selecting geometry, material, and fabrication strategies based on application-specific requirements. By integrating quantitative comparisons and performance-driven insights, this work aims to support the development and deployment of next-generation auxetic energy absorbers in engineering practice.
AB - Auxetic structures, distinguished by their unique deformation behaviors, exhibit remarkable mechanical properties, including superior energy absorption capacity, high indentation resistance, enhanced toughness, and excellent surface conformability. Compared to conventional honeycomb or foam materials, auxetic configurations can reduce peak stress by 20%–40%, extend the stress plateau by up to 60%, and enhance densification resistance by over 30%, making them highly suitable for impact, blast, and crash energy mitigation. This review systematically summarizes recent developments in the design, optimization, and manufacturing of auxetic structures for energy absorption purpose. Among various unit-cell topologies, modified re-entrant offer high specific energy absorption under quasi-static loading, while rotating and hierarchical designs demonstrate superior performance in multi-directional and dynamic scenarios. Optimization strategies, ranging from topology optimization to surrogate-assisted machine learning, enable precise tailoring of energy absorption profiles. Additionally, advances in additive manufacturing and modular assembly facilitate the scalable fabrication of complex auxetic geometries. This review highlights the correlations between structural features and energy absorption efficiency and proposes guidelines for selecting geometry, material, and fabrication strategies based on application-specific requirements. By integrating quantitative comparisons and performance-driven insights, this work aims to support the development and deployment of next-generation auxetic energy absorbers in engineering practice.
KW - auxetic structures
KW - design
KW - energy absorption
KW - manufacturing
KW - negative Poisson’s ratio
KW - optimization
UR - https://www.scopus.com/pages/publications/105022208378
U2 - 10.1177/1045389X251381598
DO - 10.1177/1045389X251381598
M3 - Review Article
AN - SCOPUS:105022208378
SN - 1045-389X
VL - 37
SP - 263
EP - 301
JO - Journal of Intelligent Material Systems and Structures
JF - Journal of Intelligent Material Systems and Structures
IS - 5
ER -