School of Materials Science and Engineering, Tianjin University, Tianjin, 300350, China.
Key Laboratory of Materials Processing and Mold, Ministry of Education, Zhengzhou University, Zhengzhou, Henan, 450002, China.
Adv Sci (Weinh). 2022 Jul;9(20):e2201657. doi: 10.1002/advs.202201657. Epub 2022 May 1.
Molecular light-harvesting capabilities and the production of low-temperature heat output are essential for flexible self-heated textiles. An effective strategy to achieve these characteristics is to introduce photoresponsive molecular interactions (photodynamic bonds) to increase the energy storage capacity and optimize the low-temperature photochromic kinetics. In this study, a series of sulfonic-grafted azobenzene-based polymers interacted with different metal ions (PAzo-M, M = Mg, Ca, Ni, Zn, Cu, and Fe) to optimize the energy level and isomerization kinetics of these polymers is designed and prepared. Photoinduced formation and dissociation of MO dynamic bonds enlarge the energy gap (∆E) between trans and cis isomers for high-energy storage and favor a high rate of isomerization for low-temperature heat release. The suitable binding energy and high ∆E enable PAzo-M to store and release isomerization energy and bond enthalpy even in a low-temperature (-5 °C) environment. PAzo-Mg possesses the highest energy storage density of 408.6 J g (113.5 Wh kg ). A flexible textile coated with PAzo-Mg can provide a high rise in temperature of 7.7-12.5 °C in a low-temperature (-5.0 to 5.0 °C) environment by selectively self-releasing heat indoors and outdoors. The flexible textile provides a new pathway for wearable thermal management devices.
对于柔性自加热纺织品而言,分子光捕获能力和低温热输出的产生至关重要。实现这些特性的有效策略是引入光响应分子相互作用(光动力键),以增加储能能力并优化低温光致变色动力学。在这项研究中,设计并制备了一系列磺酸接枝偶氮苯基聚合物,与不同的金属离子(PAzo-M,M = Mg、Ca、Ni、Zn、Cu 和 Fe)相互作用,以优化这些聚合物的能级和异构化动力学。MO 动态键的光诱导形成和解离会增大反式和顺式异构体之间的能隙(∆E),从而实现高能存储,并有利于低温热释放的高异构化速率。合适的结合能和高 ∆E 使 PAzo-M 能够在低温(-5°C)环境下存储和释放异构化能和键焓。PAzo-Mg 具有最高的储能密度 408.6 J g(113.5 Wh kg)。涂覆有 PAzo-Mg 的柔性纺织品可以通过在室内和室外选择性地自我释放热量,在低温(-5.0 至 5.0°C)环境下将温度升高 7.7-12.5°C。这种柔性纺织品为可穿戴热管理设备提供了一条新途径。