Submitted:
18 December 2025
Posted:
19 December 2025
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Momentum Mismatch
2.2. Maxwell’s Equations and Boundary Conditions
2.3. Plasmonic Condition
2.4. Dispersion Relation
2.4.1. Metal-Air Interface
2.4.2. Transfer Matrix Method (TMM)
2.4.3. Filling Fraction and Effective Medium Approximation
2.4.4. Modeling Strategy
3. Results
3.1. SPP Modes Supported by Gold Thin Films
3.2. Titanium-Induced Losses and Their Effect on SPR Excitation
3.3. Models: Nanopillars (NPs), Nanoholes (NHs), and Hollow Nanopillars (HNPs)
3.4. Nanopillars (NPs)
3.4.1. Hollow Nanopillar (HNPs)
Case Study I—Solid Gold Nanopillar
3.4.2. Case Study II—Hollow Gold Nanopillar
3.5. Nanoholes (NHs)
3.6. Effect of s- and p-Polarized Light
3.6.1. Effective Medium Modeling
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Senanayake, P.; Hung, C.H.; Shapiro, J.; Lin, A.; Liang, B.; Williams, B.S.; Huffaker, D.L. Surface Plasmon-Enhanced Nanopillar Photodetectors. Nano Lett. 2011. [CrossRef]
- Nakamoto, K.; Kurita, R.; Niwa, O. Arrays of Metallic Nanopillars in Holes for Plasmonic Devices. In Proceedings of the 15th International Conference on Miniaturized Systems for Chemistry and Life Sciences (MicroTAS), 2011, pp. 1786–1788.
- Parsons, J.; Hendry, E.; Burrows, C.P.; Auguié, B.; Sambles, J.R.; Barnes, W.L. Localized Surface-Plasmon Resonances in Periodic Nondiffracting Metallic Nanoparticle and Nanohole Arrays. Phys. Rev. B 2009, 79, 073412. [CrossRef]
- Eftekhari, F.; Escobedo, C.; Ferreira, J.; Duan, X.; Girotto, E.M.; Brolo, A.G.; Gordon, R.; Sinton, D. Nanoholes as Nanochannels: Flow-Through Plasmonic Sensing. Anal. Chem. 2011, 83, 828–833. [CrossRef]
- Lesuffleur, A.; Im, H.; Lindquist, N.C.; Lim, K.S.; Oh, S.H. Laser-Illuminated Nanohole Arrays for Multiplex Plasmonic Microarray Sensing. Opt. Express 2008, 16, 219–224. [CrossRef]
- Lospinoso, D.; Colombelli, A.; Lomascolo, M.; Rella, R.; Manera, M.G. Self-Assembled Metal Nanohole Arrays with Tunable Plasmonic Properties for SERS Single-Molecule Detection. Nanomaterials 2022, 12, 380. [CrossRef]
- Kotlarek, D.; Fossati, S.; Venugopalan, P.; Quilis, N.G.; Slabý, J.; Homola, J.; Lequeux, M.; Amiard, F.; Lamy de la Chapelle, M.; Jonas, U.; et al. Actuated Plasmonic Nanohole Arrays for Sensing and Optical Spectroscopy Applications. Nanoscale 2020, 12, 9756–9768. [CrossRef]
- Wang, W.; Cui, Y.; Fung, K.H.; Zhang, Y.; Ji, T.; Hao, Y. Comparison of Nanohole-Type and Nanopillar-Type Patterned Metallic Electrodes Incorporated in Organic Solar Cells. Nanoscale Res. Lett. 2017, 12, 538. [CrossRef]
- Najiminaini, M.; Ertorer, E.; Kaminska, B.; Mittler, S.; Carson, J.J. Surface Plasmon Resonance Sensing Properties of a 3D Nanostructure Consisting of Aligned Nanohole and Nanocone Arrays. Analyst 2014, 139, 1876–1882. [CrossRef]
- Escobedo, C.; Vincent, S.; Choudhury, A.I.K.; Campbell, J.; Brolo, A.G.; Sinton, D.; Gordon, R. Integrated Nanohole Array Surface Plasmon Resonance Sensing Device Using a Dual-Wavelength Source. J. Micromech. Microeng. 2011, 21, 115001. [CrossRef]
- Xiang, G.; Zhang, N.; Zhou, X. Localized Surface Plasmon Resonance Biosensing with Large Area of Gold Nanoholes Fabricated by Nanosphere Lithography. Nanoscale Res. Lett. 2010, 5, 818–822. [CrossRef]
- Correia-Ledo, D.; Gibson, K.F.; Dhawan, A.; Couture, M.; Vo-Dinh, T.; Graham, D.; Masson, J.F. Assessing the Location of Surface Plasmons Over Nanotriangle and Nanohole Arrays of Different Size and Periodicity. J. Phys. Chem. C 2012, 116, 6884–6892. [CrossRef]
- Bicket, I.C.; Bellido, E.P.; McRae, D.; Kapetanovic, V.; Lagugné-Labarthet, F.; Botton, G.A. Surface Plasmon Resonance Mode Behaviour in Sierpinski Fractal Triangles and New Plasmonic Materials. Microsc. Microanal. 2019, 25, 636–637. [CrossRef]
- Jones, D.; Liu, N.; Corbett, B.; Lovera, P.; Quinn, A.J.; O’Riordan, A. Surface Plasmon Assisted Extraordinary Transmission in Metallic Nanohole Arrays and Its Suitability as a Bio-Sensor. J. Phys.: Conf. Ser. 2011, 307, 012005. [CrossRef]
- Maier, S.A. Plasmonics: Fundamentals and Applications; Springer: New York, 2007.
- Sarid, D.; Challener, W. Modern Introduction to Surface Plasmons: Theory, Mathematica Modeling, and Applications; Cambridge University Press: Cambridge, 2010.
- Gupta, B.D.; Srivastava, S.K.; Verma, R.K. Fiber Optic Sensors Based on Plasmonics; World Scientific Publishing: Singapore, 2015.
- Oulton, R. Surface plasmon laser: sources of nanoscopic light. Materials Today. 2012, 15, 26–34. [CrossRef]
- Barnes, W.L.; Dereux, A.; W, E.T. Surface plasmon subwavelength optics. Nature 2003, 424, 824–830. [CrossRef]
- Chunguang, D.; Qingli, J.; Zhengfeng, H. Coupler-free transition from light to surface plasmon polariton. Physics Review A 2015, 91, 1–9. [CrossRef]
- Ebbesen, T.W.; Genet, C.; Bozhevolnyi, S. Surface-plasmon circuitry. Physics Today 2008, 61, 44–50. [CrossRef]
- Bliokh, K.Y.; Bekshaev1, A.Y.; Nori, F. Optical momentum and angular momentum in complex media: from the Abraham–Minkowski Debate to Unusual Properties of Surface Plasmon. New Journal of Physics 2017, 19, 1–23. [CrossRef]
- H., R., Ed. Surface Plasmons on Smooth and Rough Surfaces and on Gratings; Vol. 111, Springer Tracts in Modern Physics, Springer Berlin, Heidelberg: Singapore, 1988.
- Gwon, H.R.; Lee, S.H. Spectral and Angular Response of Surface Plasmon Resonance Based on the Kretschmann Prism Configuration. Mat. Trans. 2010, 51, 1150–1155. [CrossRef]
- Garibello, B.; Martin, Y. Deduction of Electric Field Module in a Multilayer of Isotropic Materials to Detect Surface Plasmons with a Graphical User Interface. Jour. of Micr., Opt. and Electromagn. App. 2021, 20, 1150–1155. [CrossRef]
- Kumar, M.; Prasad, S. Mid-infrared Biosensor Based on Bloch Surface Mode Excitation in Truncated One- Dimensional Ternary Photonics Crystal Under Kretschmann Configuration. Plasm. 2021, 16, 923–932. [CrossRef]
- Babaei, F.; Seyyedi, S.A. Excitation of Surface Plasmon Both Interfaces of a Silver Thin Film in Two- Layer Kretschmann Geometry. Plasm. 2021, 16, 2139–2146. [CrossRef]
- Laurio, C.M.; Katsuki, H.; Yanagi, H. Numerical Simulations on Strong Coupling of Bloch Surface Waves and Exciton in Dielectric-Semiconductor Multilayerd. Journ. of Phys.: Cond. Matter. 2020, 32, 415003–415008. [CrossRef]
- Fen, Y.W.; Yunus, M.M. Optical Characterization of Multilayers Thin Films Using Surface Plasmon Resonance Method From Electromagnetic Theory to Sensor Application. AIP Conf. Procc. 2012, 1482, 132–135. [CrossRef]
- Wang, W.; Qi, L. L.
- Collin, S. Nanostructure Arrays in Free-Space: optical Properties and Applications, journal = Rep. Prog. Phys., year = 2014, volume = 77, pages = 1–33, number = 126402, doi = 10.1088/0034-4885/77/12/126402. [CrossRef]
- Mulyanti, B.; Wulandari, C.; Mohamad, N.R.; Rifaldi, E.; Hasanah, L.; Menon, P.S. Bimetallic Ag/Au Thin Films in Kretschmann-Based Surface Plasmon Resonance Sensor for Glucose Detection. Optoelectron. Adv. Mater. Rapid Commun. 2020, 14, 487–493.
- Kim, W.M.; Kim, S.H.; Lee, K.S.; Lee, T.S.; Kim, I.H. Titanium Nitride Thin Film as an Adhesion Layer for Surface Plasmon Resonance Sensor Chips. Appl. Surf. Sci. 2012, 261, 749–752. [CrossRef]
- Khairulazdan, N.B.; Mohamed, R.; Berhanuddin, D.D.; Menon, P.S. Characterisation of Nano-Thin Film GO/TiO2 Layers for Kretschmann-Based Surface Plasmon Resonance Visible Sensing Using FDTD Method. Opt. Appl. 2021, 51, 579–587. [CrossRef]
- Maier, S.A., Ed. World Scientific Handbook of Metamaterials and Plasmonics; Vol. 1, World Scientific Series in Nanoscience and Nanotechnology, World Scientific Publishing: Singapore, 2017.
- Sareni, B.; Krähenbühl, L.; Beroual, A.; Brosseau, C. Effective dielectric constant of periodic composite materials. Appl. Phys. 1996, 80, 1688–1696. [CrossRef]








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