Self-poled piezoelectric polymer composites via melt-state energy implantation

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作者
Zhao-Xia Huang
Lan-Wei Li
Yun-Zhi Huang
Wen-Xu Rao
Hao-Wei Jiang
Jin Wang
Huan-Huan Zhang
He-Zhi He
Jin-Ping Qu
机构
[1] South China University of Technology,National Engineering Research Center of Novel Equipment for Polymer Processing, Key Laboratory of Polymer Processing Engineering, Ministry of Education, Guangdong Provincial Key Laboratory of Technique and Equipment for
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Nature Communications | / 15卷
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摘要
Lightweight flexible piezoelectric polymers are demanded for various applications. However, the low instinctively piezoelectric coefficient (i.e. d33) and complex poling process greatly resist their applications. Herein, we show that introducing dynamic pressure during fabrication is capable for poling polyvinylidene difluoride/barium titanate (PVDF/BTO) composites with d33 of ~51.20 pC/N at low density of ~0.64 g/cm3. The melt-state dynamic pressure driven energy implantation induces structure evolutions of both PVDF and BTO are demonstrated as reasons for self-poling. Then, the porous material is employed as pressure sensor with a high output of ~20.0 V and sensitivity of ~132.87 mV/kPa. Besides, the energy harvesting experiment suggests power density of ~58.7 mW/m2 can be achieved for 10 N pressure with a long-term durability. In summary, we not only provide a high performance lightweight, flexible piezoelectric polymer composite towards sustainable self-powered sensing and energy harvesting, but also pave an avenue for electrical-free fabrication of piezoelectric polymers.
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[1]  
Qian X(2023)Fluoropolymer ferroelectrics: Multifunctional platform for polar-structured energy conversion Science 380 eadg0902-1121
[2]  
Chen X(1983)Ferroelectric polymers Science 220 1115-706
[3]  
Zhu L(2019)Insect-scale fast moving and ultrarobust soft robot Sci. Robot. 4 eaax1594-32250
[4]  
Zhang QM(2023)Recent progress on structure manipulation of poly(vinylidene fluoride)-based ferroelectric polymers for enhanced piezoelectricity and applications Adv. Funct. Mater. 33 2301302-61
[5]  
Lovinger AJ(2014)Electroactive phases of poly(vinylidene fluoride): determination, processing and applications Prog. Polym. Sci. 39 683-140
[6]  
Wu Y(2021)Enhanced piezoelectric performance of various electrospun PVDF nanofibers and related self-powered device applications ACS Appl. Mater. Interfaces 13 32242-883
[7]  
Zhang L(2020)Structural insight in the interfacial effect in ferroelectric polymer nanocomposites Adv. Mater. 32 2005431-2408
[8]  
Martins P(2021)Piezoelectric nanogenerators derived self-powered sensors for multifunctional applications and artificial intelligence Adv. Funct. Mater. 31 2102983-8501
[9]  
Lopes AC(2021)Flexophotovoltaic effect in potassium sodium niobate/poly(vinylidene fluoride-trifluoroethylene) nanocomposite Adv. Sci. 8 2004554-1082
[10]  
Lanceros-Mendez S(2019)Performance enhancement of flexible piezoelectric nanogenerator via doping and rational 3D structure design for self-powered mechanosensational system Adv. Funct. Mater. 29 1904259-309