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首页> 外文期刊>Nano letters >Woven Kevlar Fiber/Polydimethylsiloxane/Reduced Graphene Oxide Composite-Based Personal Thermal Management with Freestanding Cu-Ni Core-Shell Nanowires
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Woven Kevlar Fiber/Polydimethylsiloxane/Reduced Graphene Oxide Composite-Based Personal Thermal Management with Freestanding Cu-Ni Core-Shell Nanowires

机译:编织Kevlar纤维/聚二甲基硅氧烷/氧化石墨烯复合材料的个人热管理,具有独立式Cu-Ni核心壳纳米线

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摘要

Thermotherapy is a widespread technique that provides relief for muscle spasms and joint injuries. A great deal of energy is used to heat the surrounding environment, and heat emitted by the human body is wasted on our surroundings. Herein, a woven Kevlar fiber (WKF)-based personal thermal management device was fabricated by directly growing vertical copper nickel (Cu-Ni) nanowires (NWs) on the WKF surface using a hydrothermal method. The treated WKF was combined with reduced graphene oxide (rGO) dispersed in polydimethylsiloxane (PDMS) to form composites using vacuum-assisted resin transfer molding (VARTM). This WKF-based personal thermal management system contained a conductive network of metallic NVVs and rGO that promoted effective Joule heating and reflected back the infrared (IR) radiation emitted by the human body. It thus behaved as a type of thermal insulation. The Cu-Ni NWs were synthesized with a tunable Ni layer on Cu core NWs to enhance the oxidation resistance of the Cu NVVs. The combined effect of the NW networks and rGO enabled a surface temperature of 70 degrees C to be attained on application of 1.5 V to the composites. The Cu3Ni1, VVKF/PDMS provided 43% more thermal insulation and higher IR reflectance than bare WKF/PDMS. The absorbed impact energy and tensile strength was highest for the Cu1Ni3- and rGO-integrated WKF/PDMS samples. Those Cu-Ni NWs having higher Ni contents displayed better mechanical properties and those with higher Cu contents showed higher Joule heating performance and IR reflectivity at a given rGO loading. The composite shows sufficient breathability and very high durability. The high flexibility of the composites and their ability to generate sufficient heat during various human motions ensures their suitability for wearable applications.
机译:热疗是一种广泛的技术,可为肌肉痉挛和关节伤害提供缓解。大量的能量用于加热周围环境,人体发出的热量浪费在我们的周围环境中。这里,通过使用水热法在WKF表面上直接在WKF表面上直接生长垂直铜镍(Cu-Ni)纳米线(NWS)来制造编织Kevlar纤维(WKF)的个人热管理装置。将处理的WKF与分散在聚二甲基硅氧烷(PDMS)中的还原的石墨烯(RGO)组合,以使用真空辅助树脂转移模塑(vartm)形成复合材料。基于WKF的个人热管理系统包含了金属NVVS和RGO的导电网络,促进了有效的焦耳加热并反射了人体发出的红外(IR)辐射。因此,它表现为一种热绝缘。 Cu-NiNWS在Cu核心NW上用可调谐的Ni层合成,以增强Cu NVV的氧化抗性。 NW网络和Rgo的组合效果使得在将1.5V施加到复合材料上的施加时使70℃的表面温度。 CU3NI1,VVKF / PDMS提供了43%的隔热保温和比裸WKF / PDMS更高的IR反射率。对于Cu1Ni3-和RGO-一体化的WKF / PDMS样品,吸收的冲击能量和拉伸强度最高。具有较高Ni含量的Cu-NiNWs显示出更好的机械性能,并且具有较高Cu内容物的Cu-Ni NWS在给定的Rgo负载下显示出更高的焦耳加热性能和IR反射率。复合材料显示出充分的透气性和非常高的耐久性。复合材料的高柔韧性及其在各种人体运动中产生足够热的能力确保其适合可穿戴应用的适用性。

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