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羟基化的BiFeO作为聚偏氟乙烯中用于柔性介电、铁电、能量存储和机械能收集应用的高效填料。

Hydroxylated BiFeO as efficient fillers in poly(vinylidene fluoride) for flexible dielectric, ferroelectric, energy storage and mechanical energy harvesting application.

作者信息

Sasmal Abhishek, Patra Aniket, Devi P Sujatha, Sen Shrabanee

机构信息

Functional Materials and Devices Division, CSIR-Central Glass & Ceramic Research Institute, Kolkata-700032, India.

Electrical and Communication Engineering, Indian Institute of Science, Bangalore-560012, India.

出版信息

Dalton Trans. 2021 Feb 9;50(5):1824-1837. doi: 10.1039/d0dt04017g.

DOI:10.1039/d0dt04017g
PMID:33465216
Abstract

Here we report the effect of surface hydroxylation of BiFeO3 fillers on the dielectric, ferroelectric, energy storage and mechanical energy harvesting performance of poly(vinylidene fluoride). Surface hydroxylation helped to improve the interfacial interaction between the filler and PVDF matrix by introducing a strong hydrogen bonding between the -OH group of the hydroxylated BiFeO3 filler surface and the -CF2 dipole of PVDF in place of electrostatic interfacial interaction between non-hydroxylated BiFeO3 and the -CH2 dipole of PVDF. The amount of polar phase increased to around 91% for a 7 wt% hydroxylated BiFeO3 loaded PVDF film (7BFOH) by this new type of interfacial interaction. The dielectric, ferroelectric, energy storage and mechanical energy harvesting performance of the PVDF based composite films also improved by the above said technique. Upon repeated human finger tapping, the 7BFOH film delivered ∼18 V output peak to peak open circuit ac voltage (VOC). After rectification, the VOC of the 7BFOH film was able to charge a 10 μF capacitor up to ∼3 V which was able to light up some LEDs (connected in parallel) together instantaneously, which proved the real life applicability of the composite films in low power consuming self-powered electronic devices.

摘要

在此,我们报告了BiFeO3填料的表面羟基化对聚偏氟乙烯的介电、铁电、储能和机械能收集性能的影响。表面羟基化通过在羟基化的BiFeO3填料表面的-OH基团与PVDF的-CF2偶极之间引入强氢键,取代了非羟基化的BiFeO3与PVDF的-CH2偶极之间的静电界面相互作用,有助于改善填料与PVDF基体之间的界面相互作用。通过这种新型界面相互作用,对于负载7 wt%羟基化BiFeO3的PVDF薄膜(7BFOH),极性相含量增加到约91%。基于PVDF的复合薄膜的介电、铁电、储能和机械能收集性能也通过上述技术得到了改善。在反复用手指轻敲时,7BFOH薄膜可提供约18 V的峰峰值开路交流电压(VOC)。经过整流后,7BFOH薄膜的VOC能够将一个10 μF的电容器充电至约3 V,这能够瞬间同时点亮一些并联连接的发光二极管,这证明了复合薄膜在低功耗自供电电子设备中的实际应用价值。

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