阳离子紫外线固化具有导电性能的生物基环氧蓖麻油玻璃聚合物

IF 4.5 3区 工程技术 Q1 CHEMISTRY, APPLIED
Matteo Bergoglio , Gabriele Palazzo , David Reisinger , Matilde Porcarello , Galder Kortaberria , Sandra Schlögl , Marco Sangermano
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引用次数: 0

摘要

碳纳米管复合材料具有优异的热稳定性、化学稳定性和导电性,因此在当代市场上的吸引力与日俱增。在本研究中,我们将这些显著特点与具有玻璃三聚体特性的生物基环氧基质相结合,从而获得了一种生物基导电涂层。环氧化蓖麻油 (ECO) 被选为直接合成的单体前体。合成依靠阳离子紫外线固化工艺,将导电碳纳米管嵌入基质中。为确定阳离子光固化过程中环氧树脂环的最终转化情况,进行了光致变量-电化学和透射傅立叶变换红外分析。拉伸试验和 DMTA 评估了热机械性能。热重分析评估了热稳定性。电介质光谱证实,随着碳纳米管含量的增加,导电性也随之增加,在碳纳米管含量为 0.5 phrs 时达到了渗流阈值。应力松弛实验证明了三聚体特性,紫外固化的复合材料在磷酸二丁酯的催化下,从 70 °C 开始发生热激活酯交换反应。总体而言,ECO-CNT 复合材料在 0.5 phr CNT 浓度下表现出较高的耐热性(高达 400 °C)、导电性和三聚体特性。因此,这项研究可被视为获得可持续生物基导电玻璃体的一个良好起点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cationic UV-curing of bio-based epoxidized castor oil vitrimers with electrically conductive properties

Cationic UV-curing of bio-based epoxidized castor oil vitrimers with electrically conductive properties

The growing appeal of carbon nanotube composites in the contemporary market derives from their exceptional thermal and chemical stability, coupled with electrical conductivity. In this study, we combined these salient features with a biobased epoxy matrix having vitrimeric properties, hence being reprocessable and resheapable, to obtain a biobased conductive coating. Epoxidised castor oil (ECO) was chosen as a monomer precursor for the straightforward synthesis. The synthesis relied on a cationic UV-curing process, embedding the conductive carbon nanotubes in the matrix. Photo DSC and transmission FTIR analysis were conducted to determine the final conversion of the epoxy rings in the cationic photocuring process. Thermo-mechanical properties were evaluated by tensile tests, and DMTA. Thermal stability was assessed by TGA. Dielectric spectroscopy confirmed increased electrical conductivity in the presence of increasing CNT content, reaching a percolation threshold at 0.5 phr of CNTs. Vitrimeric properties were proved by stress relaxation experiments, and the UV-cured composite underwent a thermo-activated transesterification reaction starting from 70 °C, catalysed by dibutyl phosphate. Overall, the ECO-CNT composite showed high thermal resistance (up to 400 °C) electrical conductivity with 0.5 phr CNT concentration, and vitrimeric properties. The study can be, therefore, considered a promising starting point to obtain sustainable biobased and electrically conductive vitrimers.

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来源期刊
Reactive & Functional Polymers
Reactive & Functional Polymers 工程技术-高分子科学
CiteScore
8.90
自引率
5.90%
发文量
259
审稿时长
27 days
期刊介绍: Reactive & Functional Polymers provides a forum to disseminate original ideas, concepts and developments in the science and technology of polymers with functional groups, which impart specific chemical reactivity or physical, chemical, structural, biological, and pharmacological functionality. The scope covers organic polymers, acting for instance as reagents, catalysts, templates, ion-exchangers, selective sorbents, chelating or antimicrobial agents, drug carriers, sensors, membranes, and hydrogels. This also includes reactive cross-linkable prepolymers and high-performance thermosetting polymers, natural or degradable polymers, conducting polymers, and porous polymers. Original research articles must contain thorough molecular and material characterization data on synthesis of the above polymers in combination with their applications. Applications include but are not limited to catalysis, water or effluent treatment, separations and recovery, electronics and information storage, energy conversion, encapsulation, or adhesion.
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