An integrated bifunctional metamaterial perfect absorber for high-efficient broadband absorption and narrowband refractive index detection

Yilin Zuo , Weijia Han , Guochao Wei , Kang Du , Yan Liu , Shengxiang Wang

Microstructures ›› 2026, Vol. 6 ›› Issue (4) : 2026078

PDF
Microstructures ›› 2026, Vol. 6 ›› Issue (4) :2026078 DOI: 10.20517/microstructures.2026.28
Research Article
An integrated bifunctional metamaterial perfect absorber for high-efficient broadband absorption and narrowband refractive index detection
Author information +
History +
PDF

Abstract

Metamaterial absorbers have been extensively investigated for broadband light harvesting and narrowband sensing, but integrating both into one compact device still remains challenging. In this work, we propose a bifunctional metamaterial absorber (BMA) based on zirconium nitride (ZrN). The device consists of periodically arranged ZrN concentric-ring arrays on a silicon dioxide (SiO2) spacer with an Au film underneath for broadband absorption, and ZrN-based four-by-four square-grid arrays on the opposite side of the Au substrate for narrowband refractive index sensing. Numerical simulations show that the broadband mode achieves an average absorptivity of 97.48% over the wavelength range of 800 to 2,300 nm, while the narrowband mode exhibits a near-perfect absorptivity at 948.1 nm with a bandwidth of 23.14 nm, delivering a sensitivity of 1,015.62 nm RIU-1. Electric field distributions and impedance analyses indicate that the absorption behavior arises from the couplings of localized surface plasmon resonances, multipole resonances, and Rayleigh Anomalies (RAs). Parametric studies demonstrate that the broadband absorption maintains high absorptivity in a wide wavelength range, whereas the narrowband resonance systematically shifts as the varying structural parameters. These results not only highlight the importance of integrating light harvesting and refractive index sensing in a single design, but also pave the way for incorporating multiple functionalities into one compact device for broad applications.

Keywords

Bifunctional metamaterial absorber / zirconium nitride / broadband absorption / hybridization / narrowband refractive index sensing

Cite this article

Download citation ▾
Yilin Zuo, Weijia Han, Guochao Wei, Kang Du, Yan Liu, Shengxiang Wang. An integrated bifunctional metamaterial perfect absorber for high-efficient broadband absorption and narrowband refractive index detection. Microstructures, 2026, 6 (4) : 2026078 DOI:10.20517/microstructures.2026.28

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Esfandiari M.,Lalbakhsh A.,Nasiri Shehni P..et al. Recent and emerging applications of Graphene-based metamaterials in electromagnetics Mater. Des. 2022 221 110920

[2]

Zhou R.,Wang Y.,Liu Z.,Pang Y.,Chen J.,Kong J.. Digital light processing 3D-printed ceramic metamaterials for electromagnetic wave absorption Nano-Micro Lett. 2022 14 122 PMC9072614

[3]

Gao N.,Zhang Z.,Deng J.,Guo X.,Cheng B.,Hou H.. Acoustic metamaterials for noise reduction: a review Adv. Mater. Technol. 2022 7 2100698

[4]

Krushynska A. O.,Torrent D.,Aragón A. M..et al. Emerging topics in nanophononics and elastic, acoustic, and mechanical metamaterials: an overview Nanophotonics 2023 12 659 86 PMC11636487

[5]

Jiao P.,Mueller J.,Raney J. R.,Zheng X.,Alavi A. H.. Mechanical metamaterials and beyond Nat. Commun. 2023 14 6004 PMC10522661

[6]

Deng B.,Zareei A.,Ding X.,Weaver J. C.,Rycroft C. H.,Bertoldi K.. Inverse design of mechanical metamaterials with target nonlinear response via a neural accelerated evolution strategy Adv. Mater. 2022 34 2206238

[7]

Landy N. I.,Sajuyigbe S.,Mock J. J.,Smith D. R.,Padilla W. J.. Perfect metamaterial absorber Phys. Rev. Lett. 2008 100 207402

[8]

Zheludev N. I.,Kivshar Y. S.. From metamaterials to metadevices Nat. Mater. 2012 11 917 24

[9]

Metamaterials: Theory, Design, and Applications; Cui, T. J., Smith, D., Liu, R., Eds.; Springer US, 2010

[10]

Wu F.,She Y.,Zhou T.,Cheng Z.,Huang J.. Hybrid one-dimensional photonic crystals containing anisotropic metamaterials: angle-driven photonic band gaps and angle-driven Tamm plasmon polaritons Phys. Rev. A. 2024 110 023503

[11]

Cummer S. A.,Christensen J.,Alù A.. Controlling sound with acoustic metamaterials Nat. Rev. Mater. 2016 1 16001

[12]

Jang E.,Cho J.,Kang C.,Chung H.. Inverse design of ultrathin metamaterial absorber Nanomaterials 2025 15 1024 PMC12250792

[13]

Song Z.,Zhang R.,Min P..et al. Inverse design of diffusion-absorption hybrid metasurfaces Laser Photonics Rev. 2023 17 2300280

[14]

Ijaz S.,Rana A. S.,Ahmad Z.,Rehman B.,Zubair M.,Mehmood M. Q.. Exploiting zirconium nitride for an efficient heat-resistant absorber and emitter pair for solar thermophotovoltaic systems Opt. Express 2021 29 31537

[15]

Wu S.,Wu T.,Xiong G.. Ultra-broadband high solar absorption in checkerboard-shaped titanium nitride plasmonic metastructures Opt. Mater. 2021 116 111117

[16]

Huang S.,Chen Y.,Yu C..et al. Optimized metamaterial solar absorber with ultra-wideband, polarization-independent and large incident angle-insensitive Chin. J. Phys. 2024 89 740 7

[17]

Wang, Y.-X.; Zhang, Y.; Du, L.; Wu, J.-H. Chiral phase modulation and a tunable broadband perfect absorber using a coherent cold atomic ensemble Phys. Rev. A 2023 108 053716

[18]

Jung J.,Lee J.,Choi J.,Choi D.,Jeong J.. Enhancement of refractive index sensing for an infrared plasmonic metamaterial absorber with a nanogap Opt. Express 2021 29 22796

[19]

Higgins S. G.,Becce M.,Belessiotis‐richards A.,Seong H.,Sero J. E.,Stevens M. M.. High-aspect-ratio nanostructured surfaces as biological metamaterials Adv. Mater. 2020 32 1903862

[20]

Watts C. M.,Liu X.,Padilla W. J.. Metamaterial electromagnetic wave absorbers Adv. Mater. 2012 24 , OP98-120, OP181.

[21]

Liu X.,Starr T.,Starr A. F.,Padilla W. J.. Infrared spatial and frequency selective metamaterial with near-unity absorbance Phys. Rev. Lett. 2010 104 207403

[22]

Kang S.,Qian Z.,Rajaram V.,Calisgan S. D.,Alù A.,Rinaldi M.. Ultra-narrowband metamaterial absorbers for high spectral resolution infrared spectroscopy Adv. Opt. Mater. 2018 7 1801236

[23]

Gao H.,Liang Y.,Yu L..et al. Bifunctional plasmonic metamaterial absorber for narrowband sensing detection and broadband optical absorption Opt. Laser Technol. 2021 137 106807

[24]

Li J.,Chen Z.,Yang H..et al. Tunable broadband solar energy absorber based on monolayer transition metal dichalcogenides materials using Au nanocubes Nanomaterials 2020 10 257 PMC7075212

[25]

Zhang S.,Li Y.,Feng G..et al. Strong infrared absorber: surface-microstructured Au film replicated from black silicon Opt. Express 2011 19 20462

[26]

Günaydın B. N.,Gülmez M.,Torabfam M..et al. Plasmonic titanium nitride nanohole arrays for refractometric sensing ACS Appl. Nano Mater. 2023 6 20612 22 PMC10684111

[27]

Benia H.,Guemmaz M.,Schmerber G.,Mosser A.,Parlebas J.. Optical and electrical properties of sputtered ZrN compounds Catal. Today 2004 89 307 12

[28]

Hansen K.,Dutta A.,Cardona M.,Yang C.. Zirconium nitride for plasmonic cloaking of visible nanowire photodetectors Plasmonics 2020 15 1231 41

[29]

Pilloud D.,Dehlinger A.,Pierson J.,Roman A.,Pichon L.. Reactively sputtered zirconium nitride coatings: structural, mechanical, optical and electrical characteristics Surf. Coat. Technol. 2003 174-175 338 44

[30]

Diroll B. T.,Saha S.,Shalaev V. M.,Boltasseva A.,Schaller R. D.. Broadband ultrafast dynamics of refractory metals: TiN and ZrN Adv. Opt. Mater. 2020 8 2000652

[31]

Rahad R.,Haque M. A.,Mahadi M. K..et al. Highly sensitive optically tunable transition metal nitride-based plasmonic pressure sensor with CMOS-compatibility at compact subwavelength dimensions IEEE Sensors J. 2024 24 22271 8

[32]

Naik G. V.,Shalaev V. M.,Boltasseva A.. Alternative plasmonic materials: beyond gold and silver Adv. Mater. 2013 25 3264 94

[33]

Yan X.,Lin Q.,Wang L.,Liu G.. Active absorption modulation by employing strong coupling between magnetic plasmons and borophene surface plasmons in the telecommunication band J. Appl. Phys. 2022 132 063101

[34]

Han W.,Zuo Y.,Wei G..et al. Tunable ultra-narrow multi-band anisotropic metamaterial perfect absorbers based on α-phase molybdenum trioxide for refractive index sensing application Measurement 2026 261 119881

[35]

Smith D. R.,Vier D. C.,Koschny T.,Soukoulis C. M.. Electromagnetic parameter retrieval from inhomogeneous metamaterials Phys. Rev. E. 2005 71 036617

[36]

Zhu Y.,Lan T.,Liu P.,Yang J.. Broadband near-infrared TiO2 dielectric metamaterial absorbers Appl. Opt. 2019 58 7134

[37]

Wang Y.,Liu Z.,Zhou F.,Yi Z.,Wang J.. Perfect absorption properties of a near-infrared super-surface perfect absorber based on a multilayer subwavelength array structure Phys. Lett. A. 2025 540 130395

[38]

Ding F.,Dai J.,Chen Y.,Zhu J.,Jin Y.,Bozhevolnyi S. I.. Broadband near-infrared metamaterial absorbers utilizing highly lossy metals Sci. Rep. 2016 6 39445 PMC5175172

[39]

Chang C.,Kort-kamp W. J. M.,Nogan J..et al. High-temperature refractory metasurfaces for solar thermophotovoltaic energy harvesting Nano Lett. 2018 18 7665 73

[40]

Friedman D.,Geisz J.,Norman A.,Wanlass M.,Kurtz S.. 0.7-eV GaInAs Junction for a GaInP/GaAs/GaInAs(1eV)/GaInAs(0.7eV) Four-Junction Solar Cell. In 2006 IEEE 4th World Conference on Photovoltaic Energy Conference, Waikoloa, HI, May 7-12, 2006; IEEE, 2006, pp 598-602

[41]

Liu B.,Wu P.,Zhu H.,Lv L.. Ultra narrow dual-band perfect absorber based on a dielectric-dielectric-metal three-layer film material Micromachines 2021 12 1552

[42]

Khonina S. N.,Butt M. A.,Kazanskiy N. L.. Numerical investigation of metasurface narrowband perfect absorber and a plasmonic sensor for a near-infrared wavelength range J. Opt. 2021 23 065102

[43]

Li R.,Zheng Y.,Luo Y..et al. Multi-peak narrow-band perfect absorber based on two-dimensional graphene array Diamond Relat. Mater. 2021 120 108666

[44]

Xie Y.,Liu Z.,Zhou F..et al. A multifrequency narrow-band perfect absorber based on graphene metamaterial Diamond Relat. Mater. 2023 137 110100

PDF

0

Accesses

0

Citation

Detail

Sections
Recommended

/