The micro-capacitance enhancement of polyionic liquids grafted onto carbon nanotubes on the piezoelectric properties of poly(vinylidene fluoride) films and their sensor applications

Suyue Li, Shiting Wang, Wenzhong Ma, Haicun Yang, Zheng Cao, Chunlin Liu, Haimu Ye
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Abstract

ABSTRACTThe increased micro-capacitance of a poly (vinylidene fluoride) (PVDF) matrix can effectively improve the piezoelectric properties of the composite material. This work used chemically modified carbon nanotubes (CNTs) as the main reinforcement material. Atom transfer radical polymerization (ATRP) was used to graft polyionic liquids (PILs) with different hydrophilic anions to the CNTs’ surfaces. Solution casting and compressive melt molding were used to prepare the PVDF-composite piezoelectric films. Micro-capacitance formed by the PIL grafted CNTs dispersed well in the PVDF matrix, and their effects on the crystalline form and piezoelectric properties were studied. The hydrophobic hexafluorophosphate anion (-PF6-) can significantly improve the CNTs dispersion and enhance the micro-capacitance formation in the PVDF matrix. During solution crystallization, the synergistic effect of CNTs and PIL on the PVDF and the solvent effect made the content of β phase of PVDF/CNTs@PIL-PF6 film reach 80.2%, resulting in a high dielectric constant of 188 and a piezoelectric coefficient of 36. In the process of melt crystallization, due to shear stretching and extrusion, the CNTs@PIL-PF6 had an obvious nucleation effect on the polar crystalline phase of PVDF, with a β phase content up to 99.3%, leading to the higher dielectric constant of 530 and the piezoelectric coefficient of 31. The current discovery provides a development direction for smart piezoelectric polymer matrix composites, which have great potential in preparing piezoelectric energy storage materials.KEYWORDS: poly(vinylidene fluoride)carbon nanotubespolyionic liquidpiezoelectricitydielectric propertiespolar phaseDisclaimerAs a service to authors and researchers we are providing this version of an accepted manuscript (AM). Copyediting, typesetting, and review of the resulting proofs will be undertaken on this manuscript before final publication of the Version of Record (VoR). During production and pre-press, errors may be discovered which could affect the content, and all legal disclaimers that apply to the journal relate to these versions also. AcknowledgmentThis research was supported by the National Natural Science Foundation of China (21406017), Changzhou Science and Technology Support Plan (Social Development)(CZ20230022), the Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD), the Top-notch Academic Programs Project of Jiangsu Higher Education Institutions (TAPP). The Postgraduate Research & Practice Innovation Program of Jiangsu Province (KYCX23_3045) is also acknowledged.
碳纳米管接枝聚离子液体对聚偏氟乙烯薄膜压电性能的微电容增强及其传感器应用
摘要增加聚偏氟乙烯(PVDF)基体的微电容可以有效地提高复合材料的压电性能。本研究采用化学修饰的碳纳米管(CNTs)作为主要的增强材料。采用原子转移自由基聚合(ATRP)技术将具有不同亲水性阴离子的多离子液体(pil)接枝到碳纳米管表面。采用溶液浇铸和熔融压铸模法制备了pvdf复合压电薄膜。研究了PIL接枝CNTs在PVDF基体中形成的微电容在PVDF基体中分散良好,并对其晶型和压电性能的影响。疏水六氟磷酸阴离子(- pf6 -)能显著改善碳纳米管在PVDF基体中的分散,增强微电容的形成。在溶液结晶过程中,CNTs和PIL对PVDF的协同作用和溶剂效应使PVDF/CNTs@PIL-PF6膜的β相含量达到80.2%,介电常数高达188,压电系数高达36。熔融结晶过程中,由于剪切拉伸和挤压作用,CNTs@PIL-PF6对PVDF极性晶相有明显的成核作用,β相含量高达99.3%,介电常数达到530,压电系数达到31。这一发现为智能压电聚合物基复合材料提供了发展方向,在制备压电储能材料方面具有很大的潜力。关键词:聚偏氟乙烯碳纳米管多离子液体压电介电性能极性相免责声明作为对作者和研究人员的服务,我们提供这个版本的接受手稿(AM)。在最终出版版本记录(VoR)之前,将对该手稿进行编辑、排版和审查。在制作和印前,可能会发现可能影响内容的错误,所有适用于期刊的法律免责声明也与这些版本有关。本研究得到国家自然科学基金项目(21406017)、常州市科技支撑计划(社会发展)项目(CZ20230022)、江苏省高校重点学科建设项目(PAPD)、江苏省高校拔尖学科建设项目(TAPP)的支持。获江苏省研究生科研与实践创新项目(KYCX23_3045)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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