School of Materials Science and Engineering, Key Lab of Guangdong Province for High Property and Functional Polymer Materials, South China University of Technology, Guangzhou 510641, PR China.
School of Materials Science and Engineering, Key Lab of Guangdong Province for High Property and Functional Polymer Materials, South China University of Technology, Guangzhou 510641, PR China.
J Colloid Interface Sci. 2021 Nov 15;602:756-766. doi: 10.1016/j.jcis.2021.06.054. Epub 2021 Jun 12.
Temperature sensing enables flammable materials to respond intelligently at high temperature, which is conducive to further improving their fire safety. However, it is still challenging to develop a smart nanocoating with sensitive temperature-sensing and efficient flame retardancy. Inspired by human skin, a thermoelectric flame retardant (TE-FR) nanocoating was fabricated by combining a dermis-mimicking thermoelectric (TE) layer and an epidermis-mimicking flame retardant (FR) layer. The TE-FR nanocoating exhibited accurate temperature sensing at 100-300 ℃ and repeatable fire-warning capability. When being burned, the fire-warning response time of the TE-FR nanocoating was only 2.0 s, and it retriggered the fire-warning device within 2.8 s when it was reburned. Meanwhile, the TE-FR nanocoating exhibited outstanding flame retardancy. The coated polypropylene self-extinguished in the horizontal and vertical burning tests. Besides, its peak heat release rate, total heat release, and peak smoke production rate were significantly reduced. This work proposed an ingenious strategy to fabricate smart nanocoating for temperature sensing and fire safety, which revealed an enticing prospect in the fields of fire protection, electronic skin, and temperature monitor.
温度感应使易燃材料能够在高温下智能响应,这有助于进一步提高它们的消防安全性能。然而,开发具有灵敏温度感应和高效阻燃性能的智能纳米涂层仍然具有挑战性。受人体皮肤启发,通过将模仿皮肤的热电(TE)层和模仿表皮的阻燃(FR)层相结合,制备了一种热电阻燃(TE-FR)纳米涂层。该 TE-FR 纳米涂层在 100-300℃ 下表现出准确的温度感应和可重复的火灾预警能力。当被燃烧时,TE-FR 纳米涂层的火灾预警响应时间仅为 2.0 s,当再次燃烧时,它在 2.8 s 内重新触发了火灾预警装置。同时,TE-FR 纳米涂层表现出优异的阻燃性能。经涂层处理的聚丙烯在水平和垂直燃烧测试中自行熄灭。此外,其峰值放热率、总放热量和峰值烟生成率均显著降低。这项工作提出了一种制造用于温度感应和消防安全的智能纳米涂层的巧妙策略,为防火、电子皮肤和温度监测领域展示了诱人的前景。