Surjadi James Utama, Zhou Yongsen, Wang Tianyu, Yang Yong, Kai Ji-Jung, Lu Yang, Wang Zuankai
Department of Mechanical Engineering, City University of Hong Kong, Kowloon, Hong Kong SAR, China.
Nano-Manufacturing Laboratory (NML), Shenzhen Research Institute of City University of Hong Kong, Shenzhen 518057, China.
iScience. 2021 Jun 26;24(7):102789. doi: 10.1016/j.isci.2021.102789. eCollection 2021 Jul 23.
The properties of mechanical metamaterials such as strength and energy absorption are often "locked" upon being manufactured. While there have been attempts to achieve tunable mechanical properties, state-of-the-art approaches still cannot achieve high strength/energy absorption with versatile tunability simultaneously. Herein, we fabricate for the first time, 3D architected organohydrogels with specific energy absorption that is readily tunable in an unprecedented range up to 5 × 10 (from 0.0035 to 18.5 J g) by leveraging on the energy dissipation induced by the synergistic combination of hydrogen bonding and metal coordination. The 3D architected organohydrogels also possess anti-freezing and non-drying properties facilitated by the hydrogen bonding between ethylene glycol and water. In a broader perspective, this work demonstrates a new type of architected metamaterials with the ability to produce a large range of mechanical properties using only a single material system, pushing forward the applications of mechanical metamaterials to broader possibilities.
诸如强度和能量吸收等机械超材料的性能在制造后往往是“固定”的。虽然人们曾尝试实现可调节的机械性能,但目前的先进方法仍无法同时实现具有多种可调性的高强度/高能量吸收。在此,我们首次制造出具有特定能量吸收的三维结构有机水凝胶,通过利用氢键和金属配位的协同组合所诱导的能量耗散,其特定能量吸收能够在高达5×10(从0.0035至18.5 J g)的前所未有的范围内轻松调节。这种三维结构有机水凝胶还具有由乙二醇和水之间的氢键促成的抗冻和不干燥特性。从更广泛的角度来看,这项工作展示了一种新型的结构超材料,它仅使用单一材料体系就能产生大范围的机械性能,推动了机械超材料在更广泛可能性方面的应用。