<p>A multifunctional cotton-based fabric was prepared by alginate-assisted in situ growth of zinc oxide (ZnO) nanoparticles on commercial cotton using a water-bath process (90&#xa0;°C, 3&#xa0;h). The ZnO/cotton composite fabric (ZNCF) showed increased surface hydrophobicity, with a water contact angle (WCA) of up to 117°, compared with rapid water absorption by untreated cotton. In a skin-contact heat-dissipation test, the surface temperature of the arm covered with ZNCF was 2.8&#xa0;°C higher than that covered with conventional cotton, indicating improved heat transfer from skin to fabric. Under simulated sunlight, ZNCF reduced surface heating by 10.7&#xa0;°C relative to conventional cotton. UV-vis spectra showed enhanced absorption in the 200–400&#xa0;nm region, supporting UV-shielding behavior under the tested spectral condition. ZNCF also promoted methylene blue degradation under light irradiation and inhibited the growth of <i>Escherichia coli</i> and <i>Staphylococcus aureus</i> in OD-based and agar-plate antibacterial assays. Combustion-residue observation further showed a larger and denser residue for ZNCF than for untreated cotton. This study provides a simple alginate-assisted route for preparing protective and functional thermal-management cotton textiles.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Alginate-assisted Water-bath ZnO Growth on Cotton Fabrics for Multifunctional Thermal-management Textiles

  • Hecan Wu,
  • Xinglin He,
  • Zhaoyubo Zeng

摘要

A multifunctional cotton-based fabric was prepared by alginate-assisted in situ growth of zinc oxide (ZnO) nanoparticles on commercial cotton using a water-bath process (90 °C, 3 h). The ZnO/cotton composite fabric (ZNCF) showed increased surface hydrophobicity, with a water contact angle (WCA) of up to 117°, compared with rapid water absorption by untreated cotton. In a skin-contact heat-dissipation test, the surface temperature of the arm covered with ZNCF was 2.8 °C higher than that covered with conventional cotton, indicating improved heat transfer from skin to fabric. Under simulated sunlight, ZNCF reduced surface heating by 10.7 °C relative to conventional cotton. UV-vis spectra showed enhanced absorption in the 200–400 nm region, supporting UV-shielding behavior under the tested spectral condition. ZNCF also promoted methylene blue degradation under light irradiation and inhibited the growth of Escherichia coli and Staphylococcus aureus in OD-based and agar-plate antibacterial assays. Combustion-residue observation further showed a larger and denser residue for ZNCF than for untreated cotton. This study provides a simple alginate-assisted route for preparing protective and functional thermal-management cotton textiles.