TY - JOUR
T1 - Polymer-derived SiCN ceramics as fillers for polymer composites with high dielectric constants
AU - Sun, Dandan
AU - Chen, Feng
AU - Gao, Yan
AU - Huang, Sijie
AU - Wang, Yiguang
N1 - Publisher Copyright:
© 2019, Springer Science+Business Media, LLC, part of Springer Nature.
PY - 2019/5/15
Y1 - 2019/5/15
N2 - High-dielectric-constant (high-ε) ceramic/polymer composites are an important class of advanced functional materials due to their applications in energy storage fields, such as embedded capacitors. Here, we synthesized novel polymer-derived silicon carbonitride (SiCN)-filled polyvinylidene fluoride (PVDF) composites by the tape-casting method. For comparison, commercial BaTiO 3 -filled PVDF composites were synthesized following the same process. The SiCN/PVDF composites showed much higher ε than the BaTiO 3 /PVDF composites over a broad frequency range (10 −1 –10 6 Hz). Furthermore, the SiCN/PVDF composites showed ultrahigh ε at low frequencies. The ε of the 40 vol% SiCN/PVDF composite was as high as 2600 at 10 −1 Hz. Although the dielectric breakdown strengths of the SiCN/PVDF composites were slightly lower than those of the BT/PVDF composites, the calculated maximum energy storage density of the 40 vol% SiCN/PVDF composites (17.5 J cm −3 ) was much higher than that of 40 vol% BT/PVDF (0.773 J cm −3 ) at 10 −1 Hz. This is the first report on the use of polymer-derived ceramics as a component of ceramic/polymer composites. The results indicate that the polymer-derived SiCN ceramics can serve as promising ceramic fillers for high-ε composites and that the obtained SiCN-filled composites have promising applications in energy storage fields.
AB - High-dielectric-constant (high-ε) ceramic/polymer composites are an important class of advanced functional materials due to their applications in energy storage fields, such as embedded capacitors. Here, we synthesized novel polymer-derived silicon carbonitride (SiCN)-filled polyvinylidene fluoride (PVDF) composites by the tape-casting method. For comparison, commercial BaTiO 3 -filled PVDF composites were synthesized following the same process. The SiCN/PVDF composites showed much higher ε than the BaTiO 3 /PVDF composites over a broad frequency range (10 −1 –10 6 Hz). Furthermore, the SiCN/PVDF composites showed ultrahigh ε at low frequencies. The ε of the 40 vol% SiCN/PVDF composite was as high as 2600 at 10 −1 Hz. Although the dielectric breakdown strengths of the SiCN/PVDF composites were slightly lower than those of the BT/PVDF composites, the calculated maximum energy storage density of the 40 vol% SiCN/PVDF composites (17.5 J cm −3 ) was much higher than that of 40 vol% BT/PVDF (0.773 J cm −3 ) at 10 −1 Hz. This is the first report on the use of polymer-derived ceramics as a component of ceramic/polymer composites. The results indicate that the polymer-derived SiCN ceramics can serve as promising ceramic fillers for high-ε composites and that the obtained SiCN-filled composites have promising applications in energy storage fields.
UR - http://www.scopus.com/inward/record.url?scp=85061033813&partnerID=8YFLogxK
U2 - 10.1007/s10853-018-03299-2
DO - 10.1007/s10853-018-03299-2
M3 - Article
AN - SCOPUS:85061033813
SN - 0022-2461
VL - 54
SP - 6982
EP - 6990
JO - Journal of Materials Science
JF - Journal of Materials Science
IS - 9
ER -