College of Chemical and Material Engineering, Zhejiang A&F University, Hangzhou 311300, China.
State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
ACS Nano. 2023 Jul 25;17(14):13269-13277. doi: 10.1021/acsnano.3c00820. Epub 2023 Jul 10.
In recent years, significant strides have been made in the development of smart clothing, which combines traditional apparel with advanced technology. As our climate and environment undergo continuous changes, it has become critically important to invent and refine sophisticated textiles that enhance thermal comfort and human health. In this study, we present a "wearable forest-like textile". This textile is based on helical lignocellulose-tourmaline composite fibers, boasting mechanical strength that outperforms that of cellulose-based and natural macrofibers. This wearable microenvironment does more than generate approximately 18625 ions/cm of negative oxygen ions; it also effectively purifies particulate matter. Furthermore, our experiments demonstrate that the negative oxygen ion environment can slow fruit decay by neutralizing free radicals, suggesting promising implications for aging retardation. In addition, this wearable microenvironment reflects solar irradiation and selectively transmits human body thermal radiation, enabling effective radiative cooling of approximately 8.2 °C compared with conventional textiles. This sustainable and efficient wearable microenvironment provides a compelling textile choice that can enhance personal heat management and human health.
近年来,智能服装的发展取得了重大进展,它将传统服装与先进技术相结合。随着我们的气候和环境不断变化,发明和改进能提高热舒适性和人类健康的复杂纺织品变得至关重要。在这项研究中,我们提出了一种“可穿戴式森林状纺织品”。这种纺织品基于螺旋状的木质素纤维-电气石复合材料纤维,具有超越纤维素基和天然大纤维的机械强度。这种可穿戴的微环境不仅能产生大约 18625 个/cm 的负氧离子,还能有效净化颗粒物。此外,我们的实验表明,负氧离子环境可以通过中和自由基来减缓水果腐烂,这对延缓衰老有很大的意义。此外,这种可穿戴的微环境反射太阳辐射,并选择性地传输人体热辐射,与传统纺织品相比,可实现约 8.2°C 的有效辐射冷却。这种可持续且高效的可穿戴微环境提供了一种有吸引力的纺织选择,可以增强个人的热管理和人类健康。