TY - JOUR
T1 - Improved energy storage performance of sandwich-structured P(VDF-HFP)-based nanocomposites by the addition of inorganic nanoparticles
AU - Guo, Yan
AU - Zhou, Di
AU - Li, Da
AU - Zhao, Weichen
AU - Wang, Yifei
AU - Pang, Lixia
AU - Shi, Zhongqi
AU - Zhou, Tao
AU - Sun, Shikuan
AU - Singh, Charanjeet
AU - Trukhanov, Sergei
AU - Sombra, Antonio Sergio Bezerra
AU - Chen, Guohua
N1 - Publisher Copyright:
© 2023 The Royal Society of Chemistry
PY - 2023/5/3
Y1 - 2023/5/3
N2 - With the rapid development of the modern electronic and electrical industry, dielectric capacitors with higher energy storage capacity have become in urgent demand in the application market. Although polymer-based composites have great application potential due to their advantages of easy machining, good self-healing and low cost, their ability to store energy is nevertheless severely constrained by the negative relationship between the polymers' breakdown strength and permittivity. In this study, we designed sandwich-structured nanocomposites, where the interlayer is filled with 0.85K0.5Na0.5NbO3-0.15Bi(Zn2/3Ta1/3)O3 nanoparticles (KNN-BZT NPs) while the outer layer is P(VDF-HFP). The design of this structure resolves the contradiction between high breakdown strength (Eb) and dielectric constant (ϵr), making it a helpful tool for enhancing the energy storage performance. The experimental results show that when the filler content of KNN-BZT NPs is 0.6 vol%, the Eb reaches 565.44 MV m−1, and the maximum and residual electric displacement obtained are 10.43 μC cm−2 and 1.26 μC cm−2, respectively. Meanwhile, the optimal discharge energy density (Ud) and efficiency (η) are 21.39 J cm−3 and 70.54%, respectively. These values are 2.77 and 1.27 times higher than those of P(VDF-HFP). The sandwich-structured nanocomposites provide an economical and efficient strategy for increasing the ability of film capacitors to store energy.
AB - With the rapid development of the modern electronic and electrical industry, dielectric capacitors with higher energy storage capacity have become in urgent demand in the application market. Although polymer-based composites have great application potential due to their advantages of easy machining, good self-healing and low cost, their ability to store energy is nevertheless severely constrained by the negative relationship between the polymers' breakdown strength and permittivity. In this study, we designed sandwich-structured nanocomposites, where the interlayer is filled with 0.85K0.5Na0.5NbO3-0.15Bi(Zn2/3Ta1/3)O3 nanoparticles (KNN-BZT NPs) while the outer layer is P(VDF-HFP). The design of this structure resolves the contradiction between high breakdown strength (Eb) and dielectric constant (ϵr), making it a helpful tool for enhancing the energy storage performance. The experimental results show that when the filler content of KNN-BZT NPs is 0.6 vol%, the Eb reaches 565.44 MV m−1, and the maximum and residual electric displacement obtained are 10.43 μC cm−2 and 1.26 μC cm−2, respectively. Meanwhile, the optimal discharge energy density (Ud) and efficiency (η) are 21.39 J cm−3 and 70.54%, respectively. These values are 2.77 and 1.27 times higher than those of P(VDF-HFP). The sandwich-structured nanocomposites provide an economical and efficient strategy for increasing the ability of film capacitors to store energy.
UR - https://www.scopus.com/pages/publications/85158051529
U2 - 10.1039/d3tc00979c
DO - 10.1039/d3tc00979c
M3 - 文章
AN - SCOPUS:85158051529
SN - 2050-7534
VL - 11
SP - 6999
EP - 7009
JO - Journal of Materials Chemistry C
JF - Journal of Materials Chemistry C
IS - 21
ER -