Cheng Yang, Zhang Xiang, Qin Yixiu, Dong Pei, Yao Wei, Matz John, Ajayan Pulickel M, Shen Jianfeng, Ye Mingxin
Institute of Special materials and Technology, Fudan University, Shanghai, China.
Department of Materials Science, Fudan University, Shanghai, China.
Nat Commun. 2021 Jul 2;12(1):4092. doi: 10.1038/s41467-021-24388-y.
The deep cryogenic temperatures encountered in aerospace present significant challenges for the performance of elastic materials in spacecraft and related apparatus. Reported elastic carbon or ceramic aerogels overcome the low-temperature brittleness in conventional elastic polymers. However, complicated fabrication process and high costs greatly limited their applications. In this work, super-elasticity at a deep cryogenic temperature of covalently crosslinked polyimide (PI) aerogels is achieved based on scalable and low-cost directional dimethyl sulfoxide crystals assisted freeze gelation and freeze-drying strategy. The covalently crosslinked chemical structure, cellular architecture, negative Poisson's ratio (-0.2), low volume shrinkage (3.1%), and ultralow density (6.1 mg/cm) endow the PI aerogels with an elastic compressive strain up to 99% even in liquid helium (4 K), almost zero loss of resilience after dramatic thermal shocks (∆T = 569 K), and fatigue resistance over 5000 times compressive cycles. This work provides a new pathway for constructing polymer-based materials with super-elasticity at deep cryogenic temperature, demonstrating much promise for extensive applications in ongoing and near-future aerospace exploration.
航空航天中遇到的深低温环境对航天器及相关设备中弹性材料的性能提出了重大挑战。据报道,弹性碳气凝胶或陶瓷气凝胶克服了传统弹性聚合物的低温脆性。然而,复杂的制造工艺和高昂的成本极大地限制了它们的应用。在这项工作中,基于可扩展且低成本的定向二甲基亚砜晶体辅助冷冻凝胶化和冷冻干燥策略,实现了共价交联聚酰亚胺(PI)气凝胶在深低温下的超弹性。共价交联的化学结构、多孔结构、负泊松比(-0.2)、低体积收缩率(3.1%)和超低密度(6.1 mg/cm³)赋予了PI气凝胶高达99%的弹性压缩应变,即使在液氦(4 K)环境下也是如此;在剧烈热冲击(∆T = 569 K)后,几乎没有弹性恢复损失;并且具有超过5000次压缩循环的抗疲劳性。这项工作为构建在深低温下具有超弹性的聚合物基材料提供了一条新途径,在当前和不久的将来的航空航天探索中具有广泛应用的巨大潜力。