List of papers for 2021

[1] Hu, Cai-Xing, et al. “A wide-angle and ultra-wideband metamaterial absorber based on a cascaded graphite involute windmill blade structure.” Journal of Optics 23.2 (2021): 025101. DOI: 10.1088/2040-8986/abd2cd

[2] Wang, Pengxiang, et al. “Research on the performance of the spin Hall effect of light based on a magnetized plasma layered structure.” JOSA B 38.2 (2021): 562-569. DOI:  10.1364/JOSAB.408883

[3] Wang, Pengxiang, et al. “Research on the spin Hall effect of light for nonlinear multilayer dielectrics and its bistable and nonreciprocal features.” Journal of Physics D: Applied Physics 54.15 (2021): 155105. DOI: 10.1088/1361-6463/abd8bd

[4] Zhang, Tao, et al. “Analysis of tunable Faraday rotation angle produced by 1D photonic crystals doped with InSb in the terahertz regime.” Applied Optics 60.5 (2021): 1448-1455. DOI: 10.1364/AO.413083

[5] Pan, Hao, et al. “Broadband terahertz absorber with gradient ring resonators based on a discrete spiral topological distribution.” JOSA B 38.3 (2021): 850-857. DOI: 10.1364/JOSAB.415928

[6] Wang, Peng-Xiang, et al. “Theoretical research on enhancement and adjustment of Spin Hall effect of light based on InSb.” Optical and Quantum Electronics 53 (2021): 1-14. DOI:  10.1007/s11082-021-02777-3

[7] Zhang, Hao, et al. “Three-dimensional gravity tailored ultra-broadband absorber based on a high-impedance surface.” JOSA B 38.3 (2021): 866-875. DOI: 10.1364/JOSAB.414118

[8] Li, Fenying, et al. “Reconfigurable electromagnetically induced transparency metamaterial simultaneously coupled with the incident electric and magnetic fields.” JOSA B 38.3 (2021): 858-865. DOI: 10.1364/JOSAB.412823

[9] Wang, Pengxiang, et al. “No-reciprocity in the spin Hall effect based on multilayer magnetized plasma.” Applied Optics 60.7 (2021): 1834-1842. DOI: 10.1364/AO.410627

[10] Guo, Si-Jia, et al. “The asymmetric optical bistability based on the one-dimensional photonic crystals composed of the defect layers containing the magnetized ferrite and nonlinear Kerr dielectric under the transverse electric polarization.” Journal of Applied Physics 129.9 (2021). DOI: 10.1063/5.0041461

[11] Mao, Ming-Yu, et al. “Giant Goos-Häanchen Shift Generated by the One-Dimensional Photonic Crystals Doped With Black Phosphorus.” IEEE Journal of Quantum Electronics 57.2 (2021): 1-7. DOI: 10.1109/JQE.2021.3061416

[12] Wan, Bao-Fei, et al. “A space filter possessing polarization separation characteristics realized by 1-D magnetized plasma photonic crystals.” IEEE Transactions on Plasma Science 49.2 (2021): 703-710. DOI: 10.1109/TPS.2021.3052055

[13] Wang, Qian-Yu, et al. “Nonreciprocal absorption characteristics of one-dimensional cylindrical magnetized plasma photonic crystals.” Physica Scripta 96.6 (2021): 065501. DOI: 10.1088/1402-4896/abede4

[14] Zhang, Hao, et al. “An ultra-broadband metamaterial absorber tailored by solid-state plasma.” Physica B: Condensed Matter 612 (2021): 412734. DOI: 10.1016/j.physb.2020.412734

[15] Tian, Xing-Liang, et al. “A gravity field tailored metamaterial absorber containing liquid metal for polarization separation.” Physica B: Condensed Matter 614 (2021): 413030. DOI: 10.1016/j.physb.2021.413030 

[16] Wan, Baofei, Haifeng Zhang, and Pengxiang Wang. “Nonreciprocal absorber with a narrow band of angular polarization sensitive regions based on a quasi-periodic structure.” Optics Letters 46.8 (2021): 1934-1937. DOI: 10.1364/OL.419107

[17] Chen, Quanfang, et al. “Tunable electromagnetically induced transparency metamaterial based on solid-state plasma: from a narrow band to a broad one.” JOSA B 38.5 (2021): 1571-1578. DOI: 10.1364/JOSAB.422522

[18] Zhang, Xinlei, et al. “A tunable ultra-wideband cross-polarization conversion based on the band splicing technology.” Applied Physics B 127 (2021): 1-11. DOI: 10.1007/s00340-021-07622-9

[19] Kong, Xinru, et al. “Effect of Cross-Polarization in the Absorption of Metatmaterial Absorber.” Mapan 36.1 (2021): 109-114. DOI: 10.1007/s12647-021-00432-6

[20] Peng, Hong-Mei, et al. “Tunable omnidirectional band gap properties of 1D plasma annular periodic multilayer structure based on an improved Fibonacci topological structure.” Optical and Quantum Electronics 53 (2021): 1-15. DOI: 10.1007/s11082-021-02912-0

[21] Gao, Ziyang, et al. “Tunable Fano resonance in one-dimensional magnetized plasmon photonic crystals.” JOSA B 38.6 (2021): 1806-1813. DOI: 10.1364/JOSAB.416118

[22] Pan, Hao, and Haifeng Zhang. “Thermally tunable polarization-insensitive ultra-broadband terahertz metamaterial absorber based on the coupled toroidal dipole modes.” Optics Express 29.12 (2021): 18081-18094. DOI: 10.1364/OE.427554

[23] Zhao, Zhen-Hua, and Hai-Feng Zhang. “A wide-band circularly polarized antenna array using a sequential phase feed structure applied to 5G-band.” Journal of Electromagnetic Waves and Applications 35.16 (2021): 2141-2152. DOI: 10.1080/09205071.2021.1934571\

[24] Wang, Qianyu, et al. “Investigation on the nonreciprocal properties of one-dimensional cylindrical magnetized plasma photonic crystals.” JOSA A 38.6 (2021): 897-907. DOI:  10.1364/JOSAA.422124

[25] Hu, Cai-Xing, Si-Jia Guo, and Hai-Feng Zhang. “A theoretical proposal of photonic crystals with gradient superconducting thicknesses for sensing applications.” Journal of Applied Physics 129.22 (2021). DOI: 10.1063/5.0051273

[26] Ma, Yu, Mingyu Mao, and Haifeng Zhang. “Nonreciprocal absorption and omnidirectional band gap in the biaxial hyperbolic metamaterials with black phosphorus.” Journal of Physics D: Applied Physics 54.34 (2021): 345103. DOI: 10.1088/1361-6463/ac073f

[27] Wang, Qian-Yu, et al. “Study on the nonreciprocal absorption properties of cylindrical photonic crystals embedded in graphene cascaded by periodic and Rudin–Shapiro sequences at large incident angles.” Journal of Applied Physics 129.22 (2021). DOI:  10.1063/5.0049632

[28] Hu, Cai-Xing, Si-Jia Guo, and Hai-Feng Zhang. “A theoretical proposal of photonic crystals with gradient superconducting thicknesses for sensing applications.” Journal of Applied Physics 129.22 (2021). DOI :10.1063/5.0051273

[29] Ma, Yu, Mingyu Mao, and Haifeng Zhang. “Nonreciprocal absorption and omnidirectional band gap in the biaxial hyperbolic metamaterials with black phosphorus.” Journal of Physics D: Applied Physics 54.34 (2021): 345103. DOI : 10.1088/1361-6463/ac073f

[30] Wang, Qian-Yu, et al. “Study on the nonreciprocal absorption properties of cylindrical photonic crystals embedded in graphene cascaded by periodic and Rudin–Shapiro sequences at large incident angles.” Journal of Applied Physics 129.22 (2021). DOI : 10.1063/5.0049632

[31] Ya-Ting Xiang, et al. “A novel comb-like nonreciprocal evanescent wave filter based on the 1-D ternary magnetized plasma photonic crystals.” IEEE Transactions on Plasma Science 49.6 (2021): 1826-1833. DOI: 10.1109/TPS.2021.3080679

[32] Xu, Yi, et al. “Optically reconfigurable non-reciprocal bistable absorption based on one-dimensional photonic crystal of plasma and non-linear materials.” Applied Physics B 127.7 (2021): 101. DOI: 10.1007/s00340-021-07645-2

[33] Wang, Zhi-Wei, et al. “Study on the PBGs of a two-dimensional photonic crystal with multilayer rings composite structure and its slow light in W1 waveguide.” Physica Scripta 96.12 (2021): 125501. DOI: 10.1088/1402-4896/ac186c

[34] Gui, Di, et al. “A tunable and polariztion-insensitive absorber based on the gravity field: from an ultra-wideband absorption to a single frequency absorption.” Physica Scripta 96.12 (2021): 125504. DOI: 10.1088/1402-4896/ac12e7

[35] Zhao, Yan, et al. “A highly selective absorber based on Archimedes-spiral-shaped metasurfaces.” Journal of Optics 23.8 (2021): 085102. DOI: 10.1088/2040-8986/ac10cd

[36] Zeng, Li, et al. “Design of ultra-broadband absorption enhancement in plasmonic absorber by interaction resonance of multi-plasmon modes and Fabry-Perot mode.” Optics Express 29.18 (2021): 29228-29241. DOI: 10.1364/OE.440172

[37] Rao, Sisi, et al. “Optical nonreciprocal bistable absorption in a one-dimensional asymmetric layered structure composed of nonlinear plasmas and general-function photonic crystals.” Journal of Physics D: Applied Physics 54.45 (2021). DOI: 455205.10.1088/1361-6463/ac15d2 

[38] Ma, Yu, Pengxiang Wang, and Haifeng Zhang. “Investigation on a multiwindow spin Hall effect and its applications based on a periodic superconducting structure with evanescent waves.” JOSA B 38.10 (2021): 2799-2805. DOI: 10.1364/JOSAB.43150

[39] Peng, Hong-Mei, et al. “A sensor based on one-dimensional cylindrical photonic crystals and graphene elements with a higher quality factor and a wider measurement range.” IEEE Sensors Journal 21.18 (2021): 19938-19947. DOI: 10.1109/JSEN.2021.3092577.

[40] Xang, Ya-Ting, Bao-Fei Wan, and Hai-Feng Zhang. “Multiscale and multiple physical quantities sensor based on nonreciprocal evanescent wave in the one-dimensional photonic crystals.”IEEE Sensors Journal 21.18(2021): 19984-19992. DOI: 10.1109/JSEN.2021.3100403.

[41] Rao, Si-Si, Bao-Fei Wan, and Hai-Feng Zhang. “Optical Bistability of 1-D Photonic Crystals Containing of Nonlinear Plasma.” IEEE Transactions on Plasma Science 49.9 (2021): 2653-2660. DOI: 10.1109/TPS.2021.3099807. 

[42] Wan, Bao-Fei, et al. “A late-model optical biochemical sensor based on OTS for methane gas and glucose solution concentration detection.” IEEE Sensors Journal 21.19 (2021): 21465-21472. DOI: 10.1109/JSEN.2021.3103548

[43] Wang, Zhi-Wei, Ya-Ting **ang, and Hai-Feng Zhang. “Band gap of two-dimensional layered cylindrical photonic crystal slab and slow light of W1 waveguide.” Optical and Quantum Electronics 53 (2021): 1-21. DOI: 10.1007/s11082-021-03285-0

[44] Rao, Si-Si, Jia-Tao Zhang, and Hai-Feng Zhang. “A multifunctional and multiscale device of magnetic-controlled AND logical operation and detection based on the nonreciprocity of the magnetized InSb photonic structure.” Results in Physics 31 (2021): 105058. DOI: 10.1016/j.rinp.2021.105058

[45] Li, Fen-Ying, et al. “A tailored ultra-broadband electromagnetically induced transparency metamaterial based on graphene.” Physica Scripta 96.12 (2021): 125530. DOI: 10.1088/1402-4896/ac3a4b

[46] Li, Qian-Qian, et al. “A circularly polarized antenna array with sequential-phase feed network.” Journal of Electromagnetic Waves and Applications 36.9 (2022): 1244-1256. DOI: 10.1080/09205071.2021.2014363

[47] Ye, Hai-Ning, et al. “A tunable metasurface based on Vanadium dioxide for Broadband RCS reduction.” Waves in Random and Complex Media (2021): 1-12. DOI: 10.1080/17455030.2021.2011469

[48] Wu, Fupei, et al. “Coherent perfect absorption in the one-dimensional non-magnetized plasma photonic crystals.” Physica Scripta 96.12 (2021): 125868. DOI: 10.1088/1402-4896/ac3fd2

[49] Rao, Si-Si, et al. “Theoretical proposal of a multitasking sensor realized by the mechanism of nonreciprocal absorption evanescent wave in the magnetized ferrite photonic crystals.” IEEE Sensors Journal 21.24 (2021): 27405-27413. DOI: 10.1109/JSEN.2021.3126158.

[50] Wang, Peng-Xiang, et al. “Theoretical research on a late-model multistage refractive index sensor based on photonic spin Hall effect.” Waves in Random and Complex Media (2021): 1-15. DOI: 10.1080/17455030.2021.2012301

[51] Sun, Yuan-Zhe, et al. “Tunable polarization comb based on the electromagnetically induced transparency with hybrid metal-graphene metamaterial.” Physica Scripta 96.12 (2021): 125539. DOI: 10.1088/1402-4896/ac454b

[52] Gao, Cheng-Jing, Dan Zhang, and Hai-Feng Zhang. “Simultaneously achieving circular-to-linear polarization conversion and electromagnetically induced transparency by utilizing a metasurface.” Annalen der Physik 534.4 (2022): 2100578. DOI: 10.1002/andp.202100578

[53] Zhou, Ziwei, et al. “Tunable zero-phase delay of one-dimensional photonic crystals containing InSb material.” JOSA B 38.1 (2021): 114-122. DOI: 10.1364/JOSAB.404852

[54] Pan, Hao, et al. “Design, simulation, and analysis of an ultra-broadband polarization-insensitive terahertz metamaterial absorber.” JOSA B 38.1 (2021): 95-103. DOI: 10.1364/JOSAB.403841

[55] Pan, Hao, et al. “Design, simulation, and analysis of an ultra-broadband polarization-insensitive terahertz metamaterial absorber.” JOSA B 38.1 (2021): 95-103. DOI : 10.1364/JOSAB.403841

[56] Zhao, Zhen-Hua, et al. “A theoretical proposal for a plasma density sensor based on the dielectric substrate antenna with high dielectric constant.” Journal of Electromagnetic Waves and Applications 35.6 (2021): 739-753. DOI: 10.1080/09205071.2020.1860833.

[57] Liu, Hou-Bing, et al. “An ultra-wideband terahertz metamaterial absorber based on the fractal structure.” Plasmonics 16 (2021): 263-271. DOI: 10.1007/s11468-020-01288-3

[58] Wang, Zi-Long, et al. “A newfangled terahertz absorber tuned temper by temperature field doped by the liquid metal.” Plasmonics 16 (2021): 425-434. DOI: 10.1007/s11468-020-01296-3

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