Zhou Yang, Liu Wei, Zhang Shuangkun, Liu Huan, Wu Zhanpeng, Wang Xiaodong
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.
Key Laboratory of Carbon Fiber and Functional Polymers (Beijing University of Chemical Technology), Ministry of Education, Beijing 100029, China.
ACS Appl Mater Interfaces. 2024 Feb 14;16(6):7754-7767. doi: 10.1021/acsami.3c16953. Epub 2024 Feb 2.
Multiactuated shape memory materials are a class of promising intelligent materials that have received great interest in the fields of self-healing, anticounterfeiting, biomedical, soft robotic, and smart thermal management applications. To obtain a light/heat-dual-actuated shape memory material for thermal management applications in fire safety, we have designed a type of halogen-free flame-retardant phase-change composite film based on polyaryloxyphosphazene (PDAP)/phosphorene (PR) hybrid foam as a support material and paraffin wax (PW) as a phase-change material (PCM). PDAP was synthesized as a flexible foam matrix through the ring-opening polymerization of hexachlorocyclotriphosphazene, followed by a substitution reaction of aryloxy groups. The porosity of the PDAP foam is improved by introducing PR nanosheets, facilitating a high latent heat capacity of the PDAP-PR/PW composite films for thermal management applications. The PDAP-PR/PW composite films can implement rapid shape recovery within 65 s in the heating process, which is much shorter than that of the corresponding film without PR nanosheets (185 s). Furthermore, the PDAP-PR/PW composite films also exhibit light-actuated shape memory behavior thanks to their good solar-to-thermal energy absorption and conversion contributed by PR nanosheets as a highly effective photothermal material. More importantly, the presence of PR nanosheets imparts an excellent flame-retardant property to the PDAP-PR/PW composite films. The PDAP-PR/PW composite film can be self-extinguished within 2 s after the flame. Through an innovative integration of flexible polyphosphazene foam, PR nanosheets, and solid-liquid PCM to obtain a sensitive actuating response to light and heat, this study offers a new approach for developing multiactuated and eco-friendly flame-retardant shape memory materials to meet the requirement of applications with a requirement of fire safety in soft actuators, thermal therapy, control devices, and so on.
多驱动形状记忆材料是一类很有前途的智能材料,在自修复、防伪、生物医学、软机器人和智能热管理应用等领域受到了极大的关注。为了获得一种用于消防安全热管理应用的光/热双驱动形状记忆材料,我们设计了一种无卤阻燃相变复合薄膜,该薄膜以聚芳氧基磷腈(PDAP)/磷烯(PR)混合泡沫为支撑材料,石蜡(PW)为相变材料(PCM)。通过六氯环三磷腈的开环聚合反应,随后进行芳氧基的取代反应,合成了柔性泡沫基体PDAP。通过引入PR纳米片提高了PDAP泡沫的孔隙率,有利于PDAP-PR/PW复合薄膜在热管理应用中具有高潜热容量。PDAP-PR/PW复合薄膜在加热过程中能在65秒内实现快速形状恢复,这比不含PR纳米片的相应薄膜(185秒)要短得多。此外,由于PR纳米片作为一种高效光热材料具有良好的太阳能-热能吸收和转换性能,PDAP-PR/PW复合薄膜还表现出光驱动形状记忆行为。更重要的是,PR纳米片的存在赋予了PDAP-PR/PW复合薄膜优异的阻燃性能。PDAP-PR/PW复合薄膜在火焰熄灭后2秒内可自行熄灭。通过将柔性聚磷腈泡沫、PR纳米片和固-液相变材料进行创新整合,以获得对光和热的敏感驱动响应,本研究为开发多驱动且环保的阻燃形状记忆材料提供了一种新方法,以满足软致动器、热疗、控制装置等具有消防安全要求的应用需求。