Issue
EPJ Appl. Metamat.
Volume 13, 2026
Special Issue on 'Metamaterials for Novel Wave Phenomena: Theory, Design and Application in Microwaves', edited by Sander Mann and Stefano Vellucci
Article Number 10
Number of page(s) 10
DOI https://doi.org/10.1051/epjam/2026002
Published online 04 March 2026
  1. Z. Wang, Y. Yao, W. Pan, H. Zhou, Y. Chen, J. Lin, J. Hao, S. Xiao, Q. He, S. Sun, Bifunctional Manipulation of Terahertz Waves with High-Efficiency Transmissive Dielectric Metasurfaces, Adv. Sci. 10, 2205499 (2023) [Google Scholar]
  2. X. Zeng, F. Zhang, X. Xi, H. Zhang, B. Luo, P. Zhu, G. Li, B. Li, J. Zhou, Manipulating resonances and absorptions of terahertz ferrite ceramics, Ceramics Int. 48, 27615 (2022) [Google Scholar]
  3. K. Amelin, U. Nagel, R. Fishman, Y. Yoshida, H. Sim, K. Park, J.-G. Park, T. Rõõm, Terahertz absorption spectroscopy study of spin waves in orthoferrite YFeO3 in a magnetic field, Phys. Rev. B 98, 174417 (2018) [Google Scholar]
  4. X. Li, D. Kim, Y. Liu, J. Kono, Terahertz spin dynamics in rare-earth orthoferrites, Photon. Insights 1, R05 (2023) [Google Scholar]
  5. X. Zeng, H. Zhang, X. Xi, B. Luo, P. Zhu, G. Li, B. Li, J. Zhou, Tuning absorption of terahertz dielectric ceramics through spin-reorientation transitions, Ceramics Int. 48, 16273 (2022) [Google Scholar]
  6. T.Q.H. Nguyen, H.L. Phan, J.-M. Kim, Design of reflective coding metasurface for terahertz wave beam steering for 6G technology, 2023 SBMO/IEEE MTT-S International Microwave and Optoelectronics Conference (IMOC), (IEEE, 2023), pp. 94–96 [Google Scholar]
  7. N. Khokhlov, A. Dolgikh, B. Ivanov, A. Kimel, Double pulse all-optical coherent control of ultrafast spin-reorientation in an antiferromagnetic rare-earth orthoferrite, APL Mater. 12, 051119 (2024) [Google Scholar]
  8. R. Dubrovin, E. Roginskii, V. Chernyshev, N. Novikova, M. Elistratova, I. Eliseyev, A. Smirnov, A. Brulev, K. Boldyrev, V.Y. Davydov, Lattice dynamics and mixing of polar phonons in the rare-earth orthoferrite TbFeO3, Phys. Rev. B 110, 134310 (2024) [Google Scholar]
  9. C. Xu, Z. Ren, J. Wei, C. Lee, Reconfigurable terahertz metamaterials: From fundamental principles to advanced 6G applications, Iscience 25, 103799 (2022) [Google Scholar]
  10. S. Artyukhin, M. Mostovoy, N.P. Jensen, D. Le, K. Prokes, V.G. De Paula, H.N. Bordallo, A. Maljuk, S. Landsgesell, H. Ryll, Solitonic lattice and Yukawa forces in the rare-earth orthoferrite TbFeO3, Nat. Mater. 11, 694 (2012) [Google Scholar]
  11. M.C. Weber, M. Guennou, H.J. Zhao, J. Íñiguez, R. Vilarinho, A. Almeida, J.A. Moreira, J. Kreisel, Raman spectroscopy of rare-earth orthoferrites R FeO3 (R= La, Sm, Eu, Gd, Tb, Dy), Phys. Rev. B 94, 214103 (2016) [Google Scholar]
  12. W. Anhua, Z. Xiangyang, S. Jiamin, S. Hui, S. Liangbi, Terahertz optical modulation research of rare-earth ferrite crystals, Chinese Journal of Quantum Electronics 40, 293 (2023) [Google Scholar]
  13. P. Vera Serna, C. García Campos, F. Sánchez De Jesús, A.M. Bolarín Miró, J.A. Juanico Lorán, J. Longwell, Mechanosynthesis, crystal structure and magnetic characterization of neodymium orthoferrite, Mater. Res. 19, 389 (2016) [Google Scholar]
  14. G. Jian-kui, L. Yi-jie, Z. Qin-nan, L. Bing-wei, L. Jing-bo, L. Dong-xiong, L. Run-hua, W. Dong-shan, Temperature effects on the terahertz spectral characteristics of PEEK, Spectr. Spectr. Anal. 41, 3347 (2021) [Google Scholar]
  15. X. Zeng, L. Wu, X. Xi, B. Li, J. Zhou, Thermally tunable terahertz magnetic responses of TbFeO3 ceramic, Ceramics Int. 44, 19054 (2018) [Google Scholar]
  16. T.G. Blank, K.A. Grishunin, A.V. Kimel, Magneto-optical detection of terahertz cavity magnon-polaritons in antiferromagnetic HoFeO3, Appl. Phys. Lett. 122, 072402 (2023) [Google Scholar]
  17. X. Zhao, G. Wang, S. Shao, Q. Meng, J. Wang, S. Zhang, B. Su, C. Zhang, Terahertz characteristics of magnetic fluid based on microfluidic technology, Int. J. Optics 2021, 5599185 (2021) [Google Scholar]
  18. R. Wang, W. Yang, S. Gao, X. Ju, P. Zhu, B. Li, Q. Li, Modulation of terahertz properties of 3D ceramic photonic crystals via post-creation non-metal anion doping treatment, J. Am. Ceramic Soc. 102, 4688 (2019) [Google Scholar]
  19. Z. Ren, L. Cheng, Z. Ma, C. Zhou, Z. Sheng, S. Guretskii, N. Liubochko, S. Barilo, J. Li, J. Shang, Terahertz spectroscopy study of doping and magnetic field induced effects on spin reorientation in Ho1-x YxFeO3 single crystals, Acta Physica Sinica 69, 207802 (2020) [Google Scholar]
  20. X. Zeng, R. Wang, X. Xi, B. Li, J. Zhou, 3D direct writing of terahertz metamaterials based on TbFeO3 dielectric ceramics, Appl. Phys. Lett. 113, 081901 (2018) [Google Scholar]
  21. R.Y. Tay, Y. Song, D.R. Yao, W. Gao, Direct-ink-writing 3D-printed bioelectronics, Mater. Today 71, 135 (2023) [Google Scholar]
  22. H. Gong, J. Huang, J. Wang, P. Zhao, M. Guo, C. Liang, D. Bai, Z. Jiang, R. Li, Additive manufacturing for terahertz metamaterials on the dielectric surface based on optimized electrohydrodynamic drop-on-demand printing technology, ACS Appl. Mater. Interfaces 16, 4222 (2024) [Google Scholar]
  23. J. Gregorio, S. Tsui, Doping-Dependent Spin Reorientation Phenomenon in Holmium-based Orthoferrite (Vibrating Sample Magnetometer Option), https://discoveryteachinglabs.com/siteDocs/EM_QD_304_01.pdf [Google Scholar]
  24. G. Kotnana, S.N. Jammalamadaka, Enhanced spin–reorientation temperature and origin of magnetocapacitance in HoFeO3, J. Magn. Magn. Mater. 418, 81 (2016) [Google Scholar]
  25. M. Adnani, M. Gooch, L. Deng, S. Agrestini, J. Herrero-Martin, H.-C. Wu, C.-K. Chang, T. Salavati-Fard, N. Poudel, J.L. García-Muñoz, Magnetocapacitance effect and magnetoelectric coupling in type-II multiferroic HoFeWO6, Phys. Rev. B 103, 094110 (2021) [Google Scholar]
  26. J. Yang, J. Pang, X. Luo, L. Ao, Q. Xie, X. Wang, H. Yang, X. Tang, Phase structure, bond features, and microwave dielectric characteristics of Ruddlesden–Popper type Sr2TiO4 ceramics, Materials 16, 5195 (2023) [Google Scholar]
  27. V.Q. Mai, N.A. Tien, low-temperature co-precipitation synthesis of HoFeO3 nanoparticles, Crystals 11, 238 (2021) [Google Scholar]
  28. S. Mukherjee, R. Gupta, A. Garg, Probing Magnetoelastic Coupling and Structural Changes in Magnetoelectric Gallium Ferrite, J. Phys.: Condens. Matter 23, 445403 (2011) [Google Scholar]
  29. M. Mączka, M. Sanjuán, A. Fuentes, L. Macalik, J. Hanuza, K. Matsuhira, Z. Hiroi, Temperature-dependent studies of the geometrically frustrated pyrochlores Ho2Ti2O7 and Dy2Ti2O7, Phys. Rev. B 79, 214437 (2009) [Google Scholar]
  30. Y. Yang, J. Sun, K. Zhu, Y. Liu, J. Chen, X. Xing, Raman study of BiFeO3 with different excitation wavelengths, Physica B 404, 171 (2009) [Google Scholar]
  31. V.S.K. Channam, Synthesis of strongly correlated oxides and investigation of their electrical and optical properties, PhD Thesis, Institut National Polytechnique de Toulouse-INPT, 2017 [Google Scholar]
  32. A.P.B. Selvadurai, R. Thiyagarajan, V. Pazhanivelu, R. Suriakarthick, W. Yang, R. Murugaraj, C. Venkateswaran, Metamagnetism emergence and spectroscopic elucidation of SmFeO3 nanoceramics, J. Phys. D: Appl. Phys. 52, 435002 (2019) [Google Scholar]
  33. R. White, R. Nemanich, C. Herring, Light scattering from magnetic excitations in orthoferrites, Phys. Rev. B 25, 1822 (1982) [Google Scholar]
  34. H. Schuchert, S. Hüfner, R. Faulhaber, Optical investigation of HoFeO3, Z. Phys. A 220, 280 (1969) [Google Scholar]
  35. Z. Fu, J. Chen, X. Chen, Y. Sun, F. Wang, J. Yang, Exploring the application of terahertz metamaterials based on metallic strip structures in detection of reverse micelles, Biosensors 14, 338 (2024) [Google Scholar]
  36. C. Chen, M. Chai, M. Jin, T. He, Terahertz metamaterial absorbers, Adv. Mater. Technol. 7, 2101171 (2022) [Google Scholar]
  37. R.G. Driggers, Encyclopedia of Optical Engineering: Las-Pho (CRC press, Hoboken, 2003), pp. 1025–2048 [Google Scholar]
  38. M. Born, E. Wolf, Principles of optics: electromagnetic theory of propagation, interference and diffraction of light (Elsevier, Amsterdam, 2013) [Google Scholar]
  39. M.N. Sadiku, S. Nelatury, Elements of electromagnetics (Oxford university press, New York, 2001) [Google Scholar]
  40. A. Mafi, Transverse Anderson localization of light: a tutorial review, Adv. in Opt. Photon. 7, 459 (2015) [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.