Hysteresis‐Free Nanoparticle‐Reinforced Hydrogels

Xiaohui Meng(Chinese Academy of Sciences), Yan Qiao(Chinese Academy of Sciences), Changwoo Do(Oak Ridge National Laboratory), Wim Bras(Oak Ridge National Laboratory), Chunyong He(Chinese Academy of Sciences), Yubin Ke(Chinese Academy of Sciences), Thomas P. Russell(Lawrence Berkeley National Laboratory), Dong Qiu(Chinese Academy of Sciences)
Advanced Materials
November 26, 2021
Cited by 239Open Access
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Abstract

The elastic storage and release of mechanical energy has been key to many developments throughout the history of mankind. Resilience, absent hysteresis, has been an elusive goal to achieve, particularly at large deformations. Using a low-crosslink-density polyacrylamide hydrogel at 96% water content having hyperbranched silica nanoparticles (HBSPs) as the major junction points, a hysteresis-free material is realized. The fatigue-free characteristic of these composite hydrogels is evidenced by the invariance of the stress-strain curves at strain ratios of 4, even after 5000 cycles. At a strain ratio of 7, only a 1.3% hysteresis is observed. A markedly increased strain-ratio-at-break of 11.5 is observed. The unique attributes of these resilient hydrogels are manifested in the high-fidelity detection of dynamic deformations under cyclic loading over a broad range of frequencies, difficult to achieve with other materials.


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