Nano–micro multiscale engineering of far-infrared cellulose acetate fiber aerogels for lightweight and flexible passive thermal health textiles
With the increasing incidence of knee osteoarthritis, the demand for personalized thermal-management orthoses is steadily growing, and aerogels are regarded as promising candidates because of their excellent thermal insulation. However, their single-mode insulation mechanism cannot effectively harness infrared radiation, and conventional functionalization strategies often compromise breathability, moisture permeability, and mechanical performance. Here, we propose a “nano–micro multiscale engineering” strategy that employs porous cellulose acetate (pCA) microfibers and nonporous cellulose acetate (npCA) nanofibers as aerogel building blocks. By introducing a blocked isocyanate (BIC) crosslinker and far-infrared ceramic powder (FICP), we fabricate a micro–nanofiber far-infrared thermal aerogel. In addition to intrinsic thermal insulation, the aerogel provides efficient radiative heating, achieving a combination of intrinsic insulation and radiative heat-management capability. When the mass ratio of pCA to npCA was 75:25, the mass ratio of BIC to cellulose acetate (CA) was 0.75, and the FICP loading was 15 wt% relative to the CA fiber mass, the aerogel exhibited outstanding insulation and an additional temperature rise of 17.44°C under external far-infrared irradiation (heating rate: 1.37°C min –1 ) in simulated-skin tests. Meanwhile, it maintained excellent air and moisture permeability, outperforming commercial knee pads and other fabrics. Overall, this work mitigates the long-standing trade-off among mechanical performance, thermal insulation, and wearing comfort, and offers a scalable pathway to customized multifunctional aerogels for wearable thermal management and thermotherapy applications.
Authors
- Maorong Zheng
- Shuo Dong (ORCID: https://orcid.org/0000-0002-7940-9583)
- Mengting Cui
- Dongxiao Ji (ORCID: https://orcid.org/0000-0002-5255-7076)
- Cheng Zha
- Longfei Zhang
- Congtao Zhao
Institutions
- Donghua University (CN)
Publication Details
- Journal
- Textile Research Journal
- Published
- 2026-09-28
- DOI
- https://doi.org/10.1177/00405175261489811
- Primary Topic
- Aerogels and thermal insulation
- Type
- article
- Field-Weighted Citation Impact
- 0.00