材料科学
纳米孔
热的
多孔性
保温
纳米技术
电子设备和系统的热管理
复合材料
执行机构
轴对称性
纤维
多孔介质
小气候
光电子学
可扩展性
热烧蚀
热稳定性
大气温度范围
温度调节
工作(物理)
光学(聚焦)
温度控制
作者
Yixiao Chen,Yucheng Tian,Zhicheng Shao,Haixin Fan,Xin Gao,Jianyong Yu,Bin Ding
摘要
ABSTRACT Maintaining stable warmth across volatile cold environments requires materials capable of adjusting heat retention according to varying thermal demands. However, current thermal regulation materials focus on switching between insulating and cooling modes, unable to offer reliable warmth during transitions. Here, we report an on‐demand regulable thermal system constructed via a coupled insulator–actuator architecture, integrating axially aligned nanoporous fibers with shape‐memory filaments. The tailored structure of fibers is designed by the synergistic combination of hydrogen‐bond dissociation and confinement‐induced crystallization, which constructs a channel‐like, axially aligned nanoporous fiber network with an ultrahigh porosity of 99.89% and an ultralight density of 1.59 mg cm −3 , while the integrated shape‐memory filaments serve as structural actuators to compress and release the fibrous network. The as‐prepared metafabric enables nearly 5‐fold thickness modulation while delivering thermal insulation that matches varying thermal demands, stabilizing the human thermal comfort zone across a wide temperature range from –6.1 to 20.8 °C. Moreover, the metafabric outperforms representative commercial fabrics (e.g., down, wool, and acrylic) at comparable thicknesses, promising great potential for developing efficient warm clothing. This work presents a scalable strategy for high‐performance fabrics that deliver reliable warmth and establishes design principles for personal microclimate control in thermal management.
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