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通过双气凝胶合成制备的用于自持续加热的超薄气凝胶结构微/纳米纤维超材料

Ultrathin aerogel-structured micro/nanofiber metafabric via dual air-gelation synthesis for self-sustainable heating.

作者信息

Tian Yucheng, Chen Yixiao, Wang Sai, Wang Xianfeng, Yu Jianyong, Zhang Shichao, Ding Bin

机构信息

Innovation Center for Textile Science and Technology, College of Textiles, Donghua University, Shanghai, China.

School of Materials Science and Engineering, Shanghai University of Engineering Science, Shanghai, China.

出版信息

Nat Commun. 2024 Jul 30;15(1):6416. doi: 10.1038/s41467-024-50654-w.

Abstract

Incorporating passive heating structures into personal thermal management technologies could effectively mitigate the escalating energy crisis. However, current passive heating materials struggle to balance thickness and insulating capability, resulting in compromised comfort, space efficiency, and limited thermoregulatory performance. Here, a dual air-gelation strategy, is developed to directly synthesize ultrathin and self-sustainable heating metafabric with 3D dual-network structure during electrospinning. Controlling the interactions among polymer, solvent, and water enables the microphase separation of charged jets, while adjusting the distribution of carbon black nanoparticles within charged fluids to form fibrous networks composed of interlaced aerogel micro/nanofibers with heat storage capabilities. With a low thickness of 0.18 mm, the integrated metafabric exhibits exceptional thermal insulation performance (15.8 mW mK), superhydrophobicity, enhanced mechanical properties, and high breathability while maintaining self-sustainable radiative heating ability (long-lasting warming of 8.8 °C). This strategy provides rich possibilities to develop advanced fibrous materials for smart textiles and thermal management.

摘要

将被动加热结构纳入个人热管理技术可以有效缓解不断升级的能源危机。然而,目前的被动加热材料难以平衡厚度和绝缘能力,导致舒适性、空间效率受损,热调节性能有限。在此,开发了一种双气凝胶策略,以在静电纺丝过程中直接合成具有3D双网络结构的超薄且自我维持加热的超织物。控制聚合物、溶剂和水之间的相互作用能够实现带电射流的微相分离,同时调整炭黑纳米颗粒在带电流体中的分布,以形成由具有蓄热能力的交错气凝胶微/纳米纤维组成的纤维网络。集成超织物厚度低至0.18毫米,具有出色的隔热性能(15.8毫瓦米开尔文)、超疏水性、增强的机械性能和高透气性,同时保持自我维持的辐射加热能力(持续升温8.8摄氏度)。该策略为开发用于智能纺织品和热管理的先进纤维材料提供了丰富的可能性。

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