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二维金属有机框架与高极性聚偏氟乙烯结合用于介电能存储和机械能收集

Two-Dimensional Metal-Organic Framework Incorporated Highly Polar PVDF for Dielectric Energy Storage and Mechanical Energy Harvesting.

作者信息

Sasmal Abhishek, Senthilnathan Jaganathan, Arockiarajan Arunachalakasi, Yoshimura Masahiro

机构信息

Department of Applied Mechanics, Indian Institute of Technology Madras (IIT Madras), Chennai 600036, Tamil Nadu, India.

Department of Civil Engineering, Indian Institute of Technology Madras (IIT Madras), Chennai 600036, Tamil Nadu, India.

出版信息

Nanomaterials (Basel). 2023 Mar 19;13(6):1098. doi: 10.3390/nano13061098.

Abstract

Here, we introduce a 2D metal-organic framework (MOF) into the poly(vinylidene fluoride) (PVDF) matrix, which has been comparatively less explored in this field. Highly 2D Ni-MOF has been synthesized in this regard via hydrothermal route and has been incorporated into PVDF matrix via solvent casting technique with ultralow filler (0.5 wt%) loading. The polar phase percentage of 0.5 wt% Ni-MOF loaded PVDF film (NPVDF) has been found to be increased to ~85% from a value of ~55% for neat PVDF. The ultralow filler loading has inhibited the easy breakdown path along with increased dielectric permittivity and hence has enhanced the energy storage performance. On the other hand, significantly enriched polarity and Young's Modulus has helped in improving its mechanical energy harvesting performance, thereby enhancing the human motion interactive sensing activities. The piezoelectric and piezo-tribo hybrid devices made up of NPVDF film have shown improved output power density of ~3.26 and 31 μW/cm compared to those of the piezoelectric and piezo-tribo hybrid devices comprising of neat PVDF (output power density ~0.6 and 17 μW/cm, respectively). The developed composite can thus be considered an excellent candidate for multifunctional applications.

摘要

在此,我们将二维金属有机框架(MOF)引入聚偏氟乙烯(PVDF)基体中,该领域对其研究相对较少。在这方面,通过水热法合成了高度二维的镍基MOF,并通过溶剂浇铸技术将其以超低填料(0.5 wt%)负载量掺入PVDF基体中。已发现,负载0.5 wt%镍基MOF的PVDF薄膜(NPVDF)的极性相百分比从纯PVDF的约55%增加到了约85%。超低的填料负载量抑制了易击穿路径,同时提高了介电常数,并因此增强了储能性能。另一方面,显著增强的极性和杨氏模量有助于改善其机械能收集性能,从而增强人体运动交互传感活动。与由纯PVDF制成的压电和压电热混合器件(输出功率密度分别约为0.6和17 μW/cm²)相比,由NPVDF薄膜制成的压电和压电热混合器件的输出功率密度提高到了约3.26和31 μW/cm²。因此,所开发的复合材料可被视为多功能应用的极佳候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eaa5/10058605/15801ead1bce/nanomaterials-13-01098-g001.jpg

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