VO2–Graphene Terahertz Multifunctional Metasurface with Switchable Broadband Waveplates and Absorber
Abstract
1. Introduction
2. Design and Simulation
3. Results and Discussion
3.1. Functionality Switching Between HWP and QWP
3.2. Broadband Switchable Absorber
3.3. The z-Component Distribution of the Surface Electric Field
3.4. Performance Comparison
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Stantchev, R.I.; Yu, X.; Blu, T.; Pickwell-Macpherson, E. Real-time terahertz imaging with a single-pixel detector. Nat. Commun. 2020, 11, 2535. [Google Scholar] [CrossRef]
- Chan, W.L.; Deibel, J.; Mittleman, D.M. Imaging with terahertz radiation. Rep. Prog. Phys. 2007, 70, 1325–1379. [Google Scholar] [CrossRef]
- Chen, T.; Li, S.; Sun, H. Metamaterials Application in Sensing. Sensors 2012, 12, 2742–2765. [Google Scholar] [CrossRef] [PubMed]
- Tselikov, G.I.; Danilov, A.; Shipunova, V.O.; Deyev, S.M.; Kabashin, A.V.; Grigorenko, A.N. Topological Darkness: How to Design a Metamaterial for Optical Biosensing with Ultrahigh Sensitivity. ACS Nano 2023, 17, 19338–19348. [Google Scholar] [CrossRef] [PubMed]
- Chen, M.; Singh, L.; Xu, N.; Singh, R.; Zhang, W.; Xie, L. Terahertz sensing of highly absorptive water-methanol mixtures with multiple resonances in metamaterials. Opt. Express 2017, 25, 14089–14097. [Google Scholar] [CrossRef]
- Li, Q.; Lei, T.; Sun, D.W. Analysis and detection using novel terahertz spectroscopy technique in dietary carbohydrate-related research: Principles and application advances. Crit. Rev. Food Sci. Nutr. 2023, 63, 1793–1805. [Google Scholar] [CrossRef]
- Cai, X.; Sushkov, A.B.; Suess, R.J.; Jadidi, M.M.; Jenkins, G.S.; Nyakiti, L.O.; Myers-Ward, R.L.; Li, S.; Yan, J.; Gaskill, D.K.; et al. Sensitive room-temperature terahertz detection via the photothermoelectric effect in graphene. Nat. Nanotechnol. 2014, 9, 814–819. [Google Scholar] [CrossRef]
- Chen, Z.; Cai, P.; Wen, Q.; Chen, H.; Tang, Y.; Yi, Z.; Wei, K.; Li, G.; Tang, B.; Yi, Y. Graphene Multi-Frequency Broadband and Ultra-Broadband Terahertz Absorber Based on Surface Plasmon Resonance. Electronics 2023, 12, 2655. [Google Scholar] [CrossRef]
- Zhang, Y.; Feng, Y.; Zhu, B.; Zhao, J.; Jiang, T. Graphene based tunable metamaterial absorber and polarization modulation in terahertz frequency. Opt. Express 2014, 22, 22743–22752. [Google Scholar] [CrossRef]
- Zhang, Z.; Gong, Y.D.; Li, K. Research Progress of Terahertz Waveplate Based on Metasurface. Laser Optoelectron. Prog. 2022, 59, 1300001. [Google Scholar]
- Xie, Q.; Sun, J.; Su, C.; Xia, F.; Wang, M.; Zhang, K.; Yun, M. Multifunctional metasurface for broadband absorption and polarization conversion based on graphene-VO2. Diam. Relat. Mater. 2023, 137, 110119. [Google Scholar] [CrossRef]
- Barkabian, M.; Sharifi, N.; Granpayeh, N. Multi-functional high-efficiency reflective polarization converter based on an ultra-thin graphene metasurface in the THz band. Opt. Express 2021, 29, 20160–20174. [Google Scholar] [CrossRef]
- Peng, Z.; Zheng, Z.; Yu, Z.; Lan, H.; Zhang, M.; Wang, S.; Li, L.; Liang, H.; Su, H. Broadband absorption and polarization conversion switchable terahertz metamaterial device based on vanadium dioxide. Opt. Laser Technol. 2023, 157, 108723. [Google Scholar] [CrossRef]
- Quader, S.; Zhang, J.; Akram, M.R.; Zhu, W. Graphene-Based High-Efficiency Broadband Tunable Linear-to-Circular Polarization Converter for Terahertz Waves. IEEE J. Sel. Top. Quantum Electron. 2020, 26, 1–8. [Google Scholar] [CrossRef]
- Guan, S.; Cheng, J.; Chen, T.; Chang, S. Bi-functional polarization conversion in hybrid graphene-dielectric metasurfaces. Opt. Lett. 2019, 44, 5683–5686. [Google Scholar] [CrossRef]
- Yue, Z.; Li, J.; Zheng, C.; Li, J.; Chen, M.; Hao, X.; Xu, H.; Wang, Q.; Zhang, Y.; Yao, J. Manipulation of polarization conversion and multiplexing via all-silicon phase-modulated metasurfaces. Chin. Opt. Lett. 2022, 20, 043601. [Google Scholar] [CrossRef]
- Cheng, Y.; Wang, J. Tunable terahertz circular polarization convertor based on graphene metamaterial. Diam. Relat. Mater. 2021, 119, 108559. [Google Scholar] [CrossRef]
- Kumar Ghosh, S.; Das, S.; Bhattacharyya, S. Graphene-based dual functional metadevice in the THz gap. Appl. Opt. 2021, 60, 11247–11255. [Google Scholar] [CrossRef]
- Sensale-Rodriguez, B.; Yan, R.; Kelly, M.M.; Fang, T.; Tahy, K.; Hwang, W.S.; Jena, D.; Liu, L.; Xing, H.G. Broadband graphene terahertz modulators enabled by intraband transitions. Nat. Commun. 2012, 3, 780. [Google Scholar] [CrossRef]
- Liu, J.; Dai, H.; Ju, J.; Cheng, K. Perfect absorber with high sensitivity based on hexagonal star graphene surface. Surf. Interfaces 2023, 39, 102985. [Google Scholar] [CrossRef]
- Gong, Y.; Hu, F.; Jiang, M.; Zhang, L.; Zou, Y.; Jiang, G.; Liu, Y. Terahertz binary coder based on graphene metasurface. Carbon 2021, 184, 167–176. [Google Scholar] [CrossRef]
- Kim, M.; Kim, S.-H.; Kang, C.; Kim, S.; Kee, C.-S. Highly efficient graphene terahertz modulator with tunable electromagnetically induced transparency-like transmission. Sci. Rep. 2023, 13, 6680. [Google Scholar] [CrossRef]
- Li, Q.; Zhang, J.; Rukhlenko, I.D.; Zhu, W. Graphene-enabled metasurface with independent amplitude and frequency controls in orthogonal polarization channels. Carbon 2023, 206, 260–267. [Google Scholar] [CrossRef]
- Kumar, P.; Rai, S.; Bhattacharyya, S.; Lakhtakia, A.; Jain, P.K. Graphene-sandwich metasurface as a frequency shifter, switch, and isolator at terahertz frequencies. Opt. Eng. 2020, 59, 110501. [Google Scholar] [CrossRef]
- Huang, J.; Li, J.; Yang, Y.; Li, J.; Li, J.; Zhang, Y.; Yao, J. Broadband terahertz absorber with a flexible, reconfigurable performance based on hybrid-patterned vanadium dioxide metasurfaces. Opt. Express 2020, 28, 17832–17840. [Google Scholar] [CrossRef] [PubMed]
- Zheng, Z.; Luo, Y.; Yang, H.; Yi, Z.; Zhang, J.; Song, Q.; Yang, W.; Liu, C.; Wu, X.; Wu, P. Thermal tuning of terahertz metamaterial absorber properties based on VO2. Phys. Chem. Chem. Phys. 2022, 24, 8846–8853. [Google Scholar] [CrossRef] [PubMed]
- Wen, Q.-Y.; Zhang, H.-W.; Yang, Q.-H.; Xie, Y.-S.; Chen, K.; Liu, Y.-L. Terahertz metamaterials with VO2 cut-wires for thermal tunability. Appl. Phys. Lett. 2010, 97, 021111. [Google Scholar] [CrossRef]
- Liu, L.; Chen, C.; Jiang, Y.; Shu, C.; He, C. Active modulation of absorption in terahertz hybrid metal-vanadium dioxide metasurface. J. Alloy. Compd. 2022, 906, 163913. [Google Scholar] [CrossRef]
- Zhou, Q.; Li, Y.; Wu, T.; Qiu, Q.; Duan, J.; Jiang, L.; Mao, W.; Yao, N.; Huang, Z. Terahertz Metasurface Modulators Based on Photosensitive Silicon. Laser Photonics Rev. 2023, 17, 2200808. [Google Scholar] [CrossRef]
- Wang, J.; Yang, R.; Li, Z.; Tian, J. Reconfigurable multifunctional polarization converter based on asymmetric hybridized metasurfaces. Opt. Mater. 2022, 124, 111953. [Google Scholar] [CrossRef]
- Zhang, X.; Wang, G.; Liu, J.; Zuo, S.; Li, M.; Yang, S.; Jia, Y.; Gao, Y. Switchable and Tunable Terahertz Metamaterial Based on Vanadium Dioxide and Photosensitive Silicon. Nanomaterials 2023, 13, 2144. [Google Scholar] [CrossRef] [PubMed]
- Dong, T.; Zhang, Y.; Li, Y.; Tang, Y.; He, X. Dual-function switchable terahertz metamaterial device with dynamic tuning characteristics. Results Phys. 2023, 45, 106246. [Google Scholar] [CrossRef]
- Tonouchi, M. Cutting-edge terahertz technology. Nat. Photonics 2007, 1, 97–105. [Google Scholar] [CrossRef]
- Lim, W.X.; Manjappa, M.; Pitchappa, P.; Singh, R. Shaping High-Q Planar Fano Resonant Metamaterials toward Futuristic Technologies. Adv. Opt. Mater. 2018, 6, 1800502. [Google Scholar] [CrossRef]
- Sreekanth, K.V.; Mahalakshmi, P.; Han, S.; Mani Rajan, M.S.; Choudhury, P.K.; Singh, R. Brewster Mode-Enhanced Sensing with Hyperbolic Metamaterial. Adv. Opt. Mater. 2019, 7, 1900680. [Google Scholar] [CrossRef]
- Cao, G.; Li, H.; Deng, Y.; Zhan, S.; He, Z.; Li, B. Systematic Theoretical Analysis of Selective-Mode Plasmonic Filter Based on Aperture-Side-Coupled Slot Cavity. Plasmonics 2014, 9, 1163–1169. [Google Scholar] [CrossRef]
- Niu, J.; Yao, Q.; Mo, W.; Li, C.; Zhu, A. Switchable bi-functional metamaterial based on vanadium dioxide for broadband absorption and broadband polarization in terahertz band. Opt. Commun. 2023, 527, 128953. [Google Scholar] [CrossRef]
- Cao, W.; Yang, X.; Gao, J. Broadband polarization conversion with anisotropic plasmonic metasurfaces. Sci. Rep. 2017, 7, 8841. [Google Scholar] [CrossRef] [PubMed]
- Zhang, H.; He, X.; Zhang, D.; Zhang, H. Multitasking device with switchable and tailored functions of ultra-broadband absorption and polarization conversion. Opt. Express 2022, 30, 23341–23358. [Google Scholar] [CrossRef] [PubMed]
- Song, Z.; Zhang, J. Achieving broadband absorption and polarization conversion with a vanadium dioxide metasurface in the same terahertz frequencies. Opt. Express 2020, 28, 12487–12497. [Google Scholar] [CrossRef]
- Yan, D.; Meng, M.; Li, J.; Li, J.; Li, X. Vanadium dioxide-assisted broadband absorption and linear-to-circular polarization conversion based on a single metasurface design for the terahertz wave. Opt. Express 2020, 28, 29843–29854. [Google Scholar] [CrossRef] [PubMed]










| Ref. | Active Materials | Dynamic Switching of HWP and QWP in the Same Frequency Band | Waveplate Dynamic Tuning | Parameter Control | The Modulation Method of the Absorber |
|---|---|---|---|---|---|
| [39] | VO2 | Only HWP (0.82–1.60 THz) | NA | Only one parameter 0.68–1.60 THz | VO2 |
| [40] | VO2 | Only HWP (0.42–1.04 THz) | NA | Only one parameter 0.52–1.20 THz | VO2 |
| [41] | VO2 | Only QWP (1.47–2.27 THz) | NA | Only one parameter 0.74–1.62 THz | VO2 |
| [32] | VO2 and photo- sensitive silicon | Only HWP (0.51–1.45 THz) | NA | Only one parameter 0.78–1.81 THz | VO2 and photosensitive silicon |
| [11] | VO2 and graphene | HWP(0.68–2.64 THz) QWP(0.89–2.51 THz) | NA | Only one parameter 0.89–2.36 THz | VO2 and graphene |
| [23] | Graphene | NA | NA | Two parameters TE: 4.65 GHz TM: 3.35–4.60 GHz | graphene |
| This work | VO2 and graphene | HWP(1.39–2.34 THz) QWP(0.92–2.68 THz) | Yes | Two parameters TE: 3.65–3.78 THz TM: 1.41–3.12 THz | VO2 and graphene |
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Su, H.; Huang, T.; Liu, G.; Chen, W.; Zi, J.; Zhang, C.; Feng, S.; Zhang, M.; Li, L.; Liang, H.; et al. VO2–Graphene Terahertz Multifunctional Metasurface with Switchable Broadband Waveplates and Absorber. Nanomaterials 2026, 16, 490. https://doi.org/10.3390/nano16080490
Su H, Huang T, Liu G, Chen W, Zi J, Zhang C, Feng S, Zhang M, Li L, Liang H, et al. VO2–Graphene Terahertz Multifunctional Metasurface with Switchable Broadband Waveplates and Absorber. Nanomaterials. 2026; 16(8):490. https://doi.org/10.3390/nano16080490
Chicago/Turabian StyleSu, Hong, Tao Huang, Gaozhao Liu, Wentao Chen, Jiarong Zi, Chenglong Zhang, Shiping Feng, Min Zhang, Ling Li, Huawei Liang, and et al. 2026. "VO2–Graphene Terahertz Multifunctional Metasurface with Switchable Broadband Waveplates and Absorber" Nanomaterials 16, no. 8: 490. https://doi.org/10.3390/nano16080490
APA StyleSu, H., Huang, T., Liu, G., Chen, W., Zi, J., Zhang, C., Feng, S., Zhang, M., Li, L., Liang, H., & Wang, S. (2026). VO2–Graphene Terahertz Multifunctional Metasurface with Switchable Broadband Waveplates and Absorber. Nanomaterials, 16(8), 490. https://doi.org/10.3390/nano16080490

