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聚(苯乙烯-异戊二烯-苯乙烯)(SIS)共聚物的大分子设计决定了它们在柔性电热复合加热器中的性能。

The Macromolecular Design of Poly(styrene-isoprene-styrene) (SIS) Copolymers Defines their Performance in Flexible Electrothermal Composite Heaters.

作者信息

Dedduwakumara Hiruni T, Barner-Kowollik Christopher, Dubal Deepak, Boase Nathan R B

机构信息

Centre for Materials Science, Queensland University of Technology, Brisbane, Queensland 4000, Australia.

School of Chemistry and Physics, Queensland University of Technology, Brisbane, Queensland 4000, Australia.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 18;16(37):48810-48822. doi: 10.1021/acsami.3c19541. Epub 2024 Mar 27.

Abstract

Electric cars are desirable for their environmental and economic benefits yet face limitations in range in cold weather due to the increased energy demands for cabin heating. To provide efficient heating for vehicles, flexible composite electrothermal heaters offer a viable solution owing to their lightweight design, efficiency, and adaptability for use within and beyond vehicle interiors. The current study aims to improve electrothermal heater stability and performance by understanding the impact of the polymer structure on composite properties. We explore how the presence and molecular structure of olefinic bonds within the polyisoprene block of styrenic triblock copolymers affect thermal stability and performance. Composite electrothermal heaters were fabricated by dispersing carbon black (CB) as the heating material in three triblock copolymer matrices, poly(styrene-1,4-isoprene-styrene) (1,4-SIS), poly(styrene-3,4-isoprene-styrene) (3,4-SIS), and its hydrogenated version poly(styrene-ethylene-propylene-styrene) (SEPS). The chemical structure and thermal properties of each copolymer were linked to electrothermal performance measurements of composite heaters to establish structure-function relationships. Notably, 3,4-SIS with 28 wt % CB demonstrated the highest thermal and electrical conductivity, resulting in uniform heat distribution. The outcomes unambiguously demonstrate that the olefinic structure of SIS copolymers enhances the electric and thermal conductivity, leading to enhanced electrothermal performance of prototype heaters compared to that of the hydrogenated copolymer.

摘要

电动汽车因其环境和经济效益而备受青睐,但由于车内供暖的能源需求增加,在寒冷天气下续航里程有限。为了给车辆提供高效供暖,柔性复合电热器因其轻量化设计、高效性以及在车内和车外使用的适应性而提供了一种可行的解决方案。当前的研究旨在通过了解聚合物结构对复合材料性能的影响来提高电热器的稳定性和性能。我们探究了苯乙烯三嵌段共聚物的聚异戊二烯嵌段中烯烃键的存在和分子结构如何影响热稳定性和性能。通过将作为加热材料的炭黑(CB)分散在三种三嵌段共聚物基体中制备复合电热器,这三种基体分别是聚(苯乙烯-1,4-异戊二烯-苯乙烯)(1,4-SIS)、聚(苯乙烯-3,4-异戊二烯-苯乙烯)(3,4-SIS)及其氢化版本聚(苯乙烯-乙烯-丙烯-苯乙烯)(SEPS)。将每种共聚物的化学结构和热性能与复合加热器的电热性能测量结果相关联,以建立结构-功能关系。值得注意的是,含有28 wt% CB的3,4-SIS表现出最高的热导率和电导率,从而实现了均匀的热分布。结果明确表明,SIS共聚物的烯烃结构提高了电导率和热导率,与氢化共聚物相比,原型加热器的电热性能得到了增强。

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