材料科学
可扩展性
可穿戴计算机
电子设备和系统的热管理
纳米技术
织物
热的
可穿戴技术
碳纳米管
稳健性(进化)
热能储存
计算机科学
热舒适性
热能
聚合物
储能
过热(电)
消散
光热治疗
智能聚合物
高效能源利用
灵活性(工程)
相变材料
低能
纳米颗粒
结晶度
作者
Xiaoye Geng,Ziyu Wang,Feng Xiong,Lifang Liu,Z. G. Zhen,Yongkang Jin,Mulin Qin,Jianwen Su,S. Gao,Yonggang Wang,Qining Wang,Ruqiang Zou
标识
DOI:10.1038/s41467-026-68951-x
摘要
Phase-change materials (PCMs) demonstrate transformative potential for wearable thermal management systems; however, their practical implementation faces challenges due to trade-offs among energy storage density, mechanical robustness, and phase-change stability. Here, we present a nanotechnology-directed strategy that integrates ultralow carbon nanotubes (CNT, 0.1 wt.%) scaffolds with three-dimensional (3D) interpenetrating polymer networks (IPNs), achieving remarkable synergy between crystallinity control and thermal regulation. The resultant phase-change fibers (PCFs) demonstrate dual-functional optimization. Firstly, they exhibit excellent latent heat storage (∆Hm = 139.0 J·g-1, ∆Hc = 138.0 J·g-1) with remarkable thermal stability, enabled by CNT-induced heterogeneous nucleation. Secondly, the PCFs show high mechanical robustness (ɛ = 1530%, σ = 6.32 MPa) and photothermal energy harvesting efficiency (η = 90.5%, at 120 mW·cm-2). These enhancements are attributed to CNT network-enhanced interfacial thermal coupling. Furthermore, the fibrous architectures enable high-fidelity (>98%) cutting/sewing during textile manufacturing, facilitating scalable production of energy-efficient thermal-regulating fabrics. This establishes a universal framework for scalable smart textiles and bridges the gap between laboratory-level phase-change engineering and industrial-scale wearable thermal systems. This strategy advances the development of self-regulating textiles with on-demand thermal responsiveness, paving the way for next-generation smart fabrics for energy-efficient personal thermal management. Phase-change materials are promising for thermal management, although achieving simultaneous phase-change stability and mechanical robustness remains challenging. Here, we present a nanotechnology-directed strategy that integrates ultralow carbon nanotubes (0.1 wt.%) scaffolds with three-dimensional interpenetrating polymer networks, achieving significant synergy between crystallinity control and efficient thermal regulation.
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