Open Access
| Issue |
EPJ Web Conf.
Volume 356, 2026
5th International Conference on Condensed Matter and Applied Physics (ICC 2025)
|
|
|---|---|---|
| Article Number | 01020 | |
| Number of page(s) | 8 | |
| Section | Condensed Matter | |
| DOI | https://doi.org/10.1051/epjconf/202635601020 | |
| Published online | 05 March 2026 | |
- Dong S, Xiang H and Dagotto E, Magnetoelectricity in multiferroics: a theoretical perspective. National Science Review 6, 629–641 (2019). [Google Scholar]
- Singh A K, Shannigrahi S and Pradhan S K, Magnetoelectric properties of multiferroic ceramic composites. Applied Physics A 129, 415 (2023). [Google Scholar]
- Hill N A, Why are there so few magnetic ferroelectrics? Journal of Physical Chemistry B 104, 6694–6709 (2000). [Google Scholar]
- Gareeva Z, Sharafullin I and Zvezdin A. 2D-Perovskite Multiferroics: Interface-Induced Magnetoelectric Effect in Perovskite-Based Multiferroic Superlattices. Crystals 13, 1404 (2023). [Google Scholar]
- Stolbov O V and Raikher Y L, Magnetostrictive and Magnetoactive Effects in Piezoelectric Polymer Composites. Nanomaterials 14, 31 (2024). [Google Scholar]
- Bhat S A and Ikram M, Synergistic magnetoelectric enhancement in 0-3 particulate multiferroic composites: unveiling the exceptional interplay of Ba0.85Sm0.15TiO3 and Co0.85Sm0.15Fe2O4 phases for superior energy conversion. RSC Advances 14, 15915–15928 (2024). [Google Scholar]
- Nam C, Na Y, Park S C, Kim H, Jeong C K, Hwang G T and Park K I, Energy harvesting of fully-flexible magnetoelectric composites using a piezoelectric P(VDF-TrFE) and magnetostrictive CoFe2O4 nanofiber. Journal of Materials Chemistry A 11, 559–568 (2023). [Google Scholar]
- Dhyani R, Srivastava R C and Dixit G, Study of Magnetic and Temperature-Dependent Dielectric Properties of Co-CuFe2O4Nanoferrites Journal of Electronic Materials 51, 5492–5507 (2022). [Google Scholar]
- Sekhar B C, Srinivasu V V and Rao B S, Magnetic and magnetostrictive properties of Cu-substituted cobalt ferrites (Co1-xCuxFe2O4, x = 0.00-0.25). Journal of Magnetism and Magnetic Materials 398, 59–65 (2016). [Google Scholar]
- Zhao L, Chen-Bo-Wen Li, Hao-Cheng Thong, Yu-Qi Jiang, Jianchun Xu, Yanan Hao, Zhongshang Dou and Ke Bi. Grain size effect on piezoelectric properties of rhombohedral PbZr0.55Ti0.45O3 ceramics. Ceramics International 49, 14576–14584 (2023). [Google Scholar]
- Niemiec P, Bochenek D and Dercz G, Electrophysical Properties of PZT-Type Ceramics Obtained by Two Sintering Methods. Applied Sciences 13, 11195 (2023). [Google Scholar]
- Jakhar N, Kadyan P S, Hooda A and Sangwan P. Structural, magnetic and magnetostrictive properties of CuxCo1-xFe2O4(x = 0.1-0.5) ferrites. Ceramics International 50, 2143–2152 (2024). [Google Scholar]
- Jie Hua, Zeyuan Cheng, Zihang Chen, He Dong, Peiding Li and Jin Wang. Tuning the microstructural and magnetic properties of Co1-xCuxFe2O4/SiO2 nanocomposites by Cu2+ doping. RSC Advances 11, 26336–26343 (2021). [Google Scholar]
- Kumar R, Verma V and Sharma P, Frequency dependent dielectric and impedance spectroscopy studies of spinel ferrites. Journal of Materials Science: Materials in Electronics 35, 11254–11263 (2024). [Google Scholar]
- Reddy M S, Rao T P and Kumar P, Dielectric dispersion and interfacial polarization in ferrite based composite ceramics. Materials Today: Proceedings 86, 512–518 (2025). [Google Scholar]
- Asif Iqbal et al., Dielectric loss behavior in ferrite-polymer nanocomposites: dependence on frequency and hopping conduction. Journal of Materials and Physical Sciences 3, 30 (2022). [Google Scholar]
- Singh R, Sharma P and Verma V, Impedance and dielectric analysis of nickel ferrites: role of grain and grain-boundary contributions. Electronics 13, 1496 (2024). [Google Scholar]
- Kuzenko D V, Temperature-activation mechanism of the temperature dependence of the dielectric constant of ferroelectric ceramics PZT. Journal of Advanced Dielectrics 12, 2250010 (2022). [Google Scholar]
- Gayakvad K, Somdatta, Mathe V, et al., Spinel ferrites for resistive random access memory applications. Emergent Materials 7, 103–131 (2024). [Google Scholar]
- Singh S, Priolkar K R and Padhan P, Magnetoelectric coupling in Cu-Co ferrite/PZT composites: Role of magnetostriction and domain-wall motion. Journal of Alloys and Compounds 947, 169228 (2023). [Google Scholar]
- Augustine P, Narayana Y and Kalarikkal N, An effective strategy for the development of multiferroic composite nanostructures with enhanced magnetoelectric coupling performance: a perovskite-spinel approach. Nanoscale Advances 3, 4866–4877 (2021). [Google Scholar]
- Jayachandran K P, Guedes J M and Rodrigues H C, Solutions for maximum coupling in multiferroic magnetoelectric composites by material design. Scientific Reports 8, 1–10 (2018). [CrossRef] [Google Scholar]
- Mao Q, Wu J, Hu Z, Xu Y, Du Y, Hao Y, Guan M, Wang C, Wang Z, Zhou Z, Dong S, Ren W, Liu M and Jiang Z, Magnetoelectric devices based on magnetoelectric bulk composites: performance, challenges and perspectives. Journal of Materials Chemistry C 9, 5594–5614 (2021). [Google Scholar]
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