Intercalation Effects on the Dielectric Properties of PVDF/Ti3C2Tx MXene Nanocomposites

被引:22
作者
Tsyganov, Alexey [1 ]
Vikulova, Maria [1 ]
Artyukhov, Denis [2 ]
Zheleznov, Denis [1 ]
Gorokhovsky, Alexander [1 ]
Gorshkov, Nikolay [1 ]
机构
[1] Yuri Gagarin State Tech Univ Saratov, Dept Chem & Technol Mat, 77 Polytecnicheskaya St, Saratov 410054, Russia
[2] Yuri Gagarin State Tech Univ Saratov, Dept Power & Elect Engn, 77 Polytecnicheskaya St, Saratov 410054, Russia
基金
俄罗斯科学基金会;
关键词
MXene; Ti3C2Tx; high-k polymer nanocomposite; permittivity; dielectric loss; dielectric properties; polyvinylidene difluoride; conductive filler; COMPOSITES; PERMITTIVITY; PERFORMANCE; POWDER; PHASES;
D O I
10.3390/nano13081337
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, we report the effect of intercalation of dimethyl sulfoxide (DMSO) and urea molecules into the interlayer space of Ti3C2Tx MXene on the dielectric properties of poly(vinylidene fluoride) (PVDF)/MXene polymer nanocomposites. MXenes were obtained by a simple hydrothermal method using Ti3AlC2 and a mixture of HCl and KF, and they were then intercalated with DMSO and urea molecules to improve the exfoliation of the layers. Then, nanocomposites based on a PVDF matrix loading of 5-30 wt.% MXene were fabricated by hot pressing. The powders and nanocomposites obtained were characterized by using XRD, FTIR, and SEM. The dielectric properties of the nanocomposites were studied by impedance spectroscopy in the frequency range of 10(2)-10(6) Hz. As a result, the intercalation of MXene with urea molecules made it possible to increase the permittivity from 22 to 27 and to slightly decrease the dielectric loss tangent at a filler loading of 25 wt.% and a frequency of 1 kHz. The intercalation of MXene with DMSO molecules made it possible to achieve an increase in the permittivity up to 30 at a MXene loading of 25 wt.%, but the dielectric loss tangent was increased to 0.11. A discussion of the possible mechanisms of MXene intercalation influence on the dielectric properties of PVDF/Ti3C2Tx MXene nanocomposites is presented.
引用
收藏
页数:14
相关论文
共 42 条
[1]  
Anasori B., 2019, 2D Metal Carbides and Nitrides (MXenes): Structure, Properties and Applications, DOI [DOI 10.1007/978-3-030-19026-2, DOI 10.1103/PHYSREVLETT.78.1396]
[2]   Relaxation processes in a polymer composite for bulk heterojunction: A dielectric spectroscopy study [J].
Asandulesa, Mihai ;
Kostromin, Sergei ;
Podshivalov, Aleksandr ;
Tameev, Alexey ;
Bronnikov, Sergei .
POLYMER, 2020, 203
[3]   Molecular dynamics of polysiloxane polar-nonpolar co-networks and blends studied by dielectric relaxation spectroscopy [J].
Asandulesa, Mihai ;
Musteata, Valentina Elena ;
Bele, Adrian ;
Dascalu, Mihaela ;
Bronnikov, Sergei ;
Racles, Carmen .
POLYMER, 2018, 149 :73-84
[4]   Prospects for the Development of High Energy Density Dielectric Capacitors [J].
Burke, Andrew .
APPLIED SCIENCES-BASEL, 2021, 11 (17)
[5]   A critical analysis of the α, β and γ phases in poly(vinylidene fluoride) using FTIR [J].
Cai, Xiaomei ;
Lei, Tingping ;
Sun, Daoheng ;
Lin, Liwei .
RSC ADVANCES, 2017, 7 (25) :15382-15389
[6]   Simultaneously Improved Thermal and Dielectric Performance of Epoxy Composites Containing Ti3C2Tx Platelet Fillers [J].
Chen, Lin ;
Cao, Yu ;
Guo, Xuebo ;
Song, Ping ;
Chen, Kai ;
Li, Diansen ;
Lin, Jun .
POLYMERS, 2020, 12 (07)
[7]   1D/2D Carbon Nanomaterial-Polymer Dielectric Composites with High Permittivity for Power Energy Storage Applications [J].
Dang, Zhi-Min ;
Zheng, Ming-Sheng ;
Zha, Jun-Wei .
SMALL, 2016, 12 (13) :1688-1701
[8]   Recent progress on dielectric polymers and composites for capacitive energy storage [J].
Han, Zhubing ;
Wang, Qing .
IENERGY, 2022, 1 (01) :50-71
[9]   Review of MXene electrochemical microsupercapacitors [J].
Jiang, Qiu ;
Lei, Yongjiu ;
Liang, Hanfeng ;
Xi, Kai ;
Xia, Chuan ;
Alshareef, Husam N. .
ENERGY STORAGE MATERIALS, 2020, 27 :78-95
[10]   Enhanced dielectric properties of polymer matrix composites with BaTiO3 and MWCNT hybrid fillers using simple phase separation [J].
Jin, Youngho ;
Xia, Ning ;
Gerhardt, Rosario A. .
NANO ENERGY, 2016, 30 :407-416