TY - JOUR
T1 - All-Weather Adaptable Non-Woven Janus Graphene Fibers with Asymmetric Wettability, Reliable Flame Retardancy and Synergistic Evaporative Cooling-Ultrafast Joule Heating
AU - Han, Yongkang
AU - Li, Tiehu
AU - Liu, Yanan
AU - Li, Lizhe
AU - Chen, Jiahe
AU - Zada, Amir
AU - Fan, Qianguo
AU - Dang, Alei
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Against the backdrop of drastic global climatic change, personal thermal management (PTM) textiles have emerged as a critical safeguard for human comfort and safety. However, the inherent trade-off between moisture management and active heating functionality significantly impedes their widespread application. Herein, a flexible Janus graphene fiber fabric (J-GFF) was fabricated via wet spinning, selective filtration, Ca2+-induced fiber fusion, and floating polymer modification strategies. By tailoring the interfacial fusion degree and surface treatment, J-GFF exhibited an excellent water vapor transmission (WVT) rate of 233.5 g m−2 h−1 and superior evaporative cooling performance, benefiting from the formed hierarchical structures and adjusted wetting behavior. Thus, when the J-GFF was used as artificial wearable textiles, the temperature of the human skin surface decreased by 4.5°C under normal conditions, and even up to 14°C under heavy perspiration. Moreover, the produced fabric demonstrated extraordinary heating efficiency and flame retardancy, where fabrics could be heated to 175°C at a high heating rate of 690°C s−1 to withstand ∼500°C firing for over 15 s. Thus, this work offers a novel avenue for developing next-generation all-weather and multifunctional PTM textiles with evaporative cooling, breathability, mechanical durability, and Joule heating and safety.
AB - Against the backdrop of drastic global climatic change, personal thermal management (PTM) textiles have emerged as a critical safeguard for human comfort and safety. However, the inherent trade-off between moisture management and active heating functionality significantly impedes their widespread application. Herein, a flexible Janus graphene fiber fabric (J-GFF) was fabricated via wet spinning, selective filtration, Ca2+-induced fiber fusion, and floating polymer modification strategies. By tailoring the interfacial fusion degree and surface treatment, J-GFF exhibited an excellent water vapor transmission (WVT) rate of 233.5 g m−2 h−1 and superior evaporative cooling performance, benefiting from the formed hierarchical structures and adjusted wetting behavior. Thus, when the J-GFF was used as artificial wearable textiles, the temperature of the human skin surface decreased by 4.5°C under normal conditions, and even up to 14°C under heavy perspiration. Moreover, the produced fabric demonstrated extraordinary heating efficiency and flame retardancy, where fabrics could be heated to 175°C at a high heating rate of 690°C s−1 to withstand ∼500°C firing for over 15 s. Thus, this work offers a novel avenue for developing next-generation all-weather and multifunctional PTM textiles with evaporative cooling, breathability, mechanical durability, and Joule heating and safety.
KW - evaporative cooling
KW - flame retardancy
KW - janus wettability
KW - joule heating
KW - non-woven graphene fiber fabric
UR - https://www.scopus.com/pages/publications/105042627955
U2 - 10.1002/smll.74295
DO - 10.1002/smll.74295
M3 - 文章
AN - SCOPUS:105042627955
SN - 1613-6810
JO - Small
JF - Small
ER -