High-Q biochemical sensor using 2D photonic crystal

L. Lu, Z. Hu, X. Hu, D. Li, S. Tian, Electronic tongue and electronic nose for food quality and safety. Food Res. Int. 162, 112214 (2022)

Article  Google Scholar 

Z. Snow, E.W. Reutzel, J. Petrich, Correlating in-situ sensor data to defect locations and part quality for additively manufactured parts using machine learning. J. Mater. Process. Technol. 302, 117476 (2022)

Article  Google Scholar 

A. Sajeevan, R.A. Sukumaran, L.R. Panicker, Y.G. Kotagiri, Trends in ready-to-use portable electrochemical sensing devices for healthcare diagnosis. Microchim. Acta 192(2), 80 (2025)

Article  Google Scholar 

D.R. Ramani, B.B. Sujitha, S. Tangade, Smart environmental monitoring systems: IoT and sensor-based advancements. Env Monitoring Using Artif Int (2025). https://doi.org/10.1002/9781394270392.ch3

Article  Google Scholar 

R. Duarah, H. Torné-Morató, G. Zhang, Y. Amin, M. Pabast, N. Sharma, Pompa, pp., Next-generation wearable optical sensors for personalized health and point-of-care diagnostics—a systematic review. Adv Health Mat 15, e04419 (2026)

Article  Google Scholar 

Y. Zhou, T. Wu, X. Li, B. Gao, Ordered micro-nano structures: synergistic integration of microneedles and photonic crystals for advanced biomedical systems. J. Mater. Chem. B 14(19), 5859–5889 (2026)

Article  Google Scholar 

R. Ye, R. Yang, L. Hu, Z. Li, Z. Luo, X. Chen, Preparation techniques, design strategies of responsive photonic crystals and their typical applications in the field of sensing. Crystals 16(4), 232 (2026)

Article  Google Scholar 

S. Anwar, Y. Qurashi, F. Aslam, M. Lin, Q. Wang, S. Shen, Z. Ouyang, Fast-light propagation in a zero-index photonic crystal waveguide with photonic bandgap claddings. Phys. Scr. 101(2), 025516 (2026)

Article  ADS  Google Scholar 

D. Saha, A. Dey, S. Mukhopadhyay, Next-generation high-speed optical switch using photonic crystal: a review. J. Opt. (2026). https://doi.org/10.1007/s12596-026-03131-0

Article  Google Scholar 

C. Erust, Kinetic investigation on the recovery of copper and cobalt from sulphuric acid plant electrofilter dust. Can. J. Chem. Eng. 104(6), 2969–2979 (2026)

Article  Google Scholar 

M.W. Rasheed, A. Mahboob, M. Amjad, L. Amin, J. Karamat, T. Fatima, Application of multi-criteria decision-making (MCDM) methods to optimize sulfuric acid derivatives. Chem. Papers (2026). https://doi.org/10.1007/s11696-026-04975-3

Article  Google Scholar 

G. Mubarak, C. Verma, M.A. Mazumder, I. Barsoum, A. Alfantazi, Nitrogen-based cationic copolymers as corrosion inhibitors for P110 carbon steel in 20% sulfuric acid investigated through experimental and theoretical studies. Sci. Rep. 16, 13366 (2026)

Article  ADS  Google Scholar 

H. Sun, T. Tian, S. Wang, Y. Liu, H. Liu, L. Wang, Low-energy-consumption electrocatalytic simultaneous conversion of SO2 into H₂SO₄ and sulfur using Pt/Ti electrode. Chem. Eng. J. (2026). https://doi.org/10.1016/j.cej.2026.173066

Article  Google Scholar 

Z. Zhou, J. Lu, Y. Zhang, F. Zheng, SO3/sulfuric acid mist condensation and removal in simulated flue gas: role of condensable particulate matter precursors and operating parameters based on heat transfer model and experiment. Appl. Therm. Eng. (2026). https://doi.org/10.1016/j.applthermaleng.2026.129759

Article  Google Scholar 

P. Singh, P. Katiyar, Effect on properties of maize starch functionalized using different concentrations of H2SO4: potential filler for bio-composites. Polym. Bull. 83(4), 174 (2026)

Article  Google Scholar 

O.G. Hussein, Y. Rostom, A.M. Mahmoud, M. Abdelkawy, M.R. Rezk, D.A. Ahmed, Potentiometric ion-selective electrode for the determination of antazoline in different formulations and biological fluids using biomimetic receptors. Curr. Anal. Chem. 22(3), 440–450 (2026)

Article  Google Scholar 

K. Danchana, H. Namba, T. Kaneta, Using a microfluidic paper-based analytical device and solid-phase extraction to determine phosphate concentration. Talanta 295, 128303 (2025)

Article  Google Scholar 

S. Ahamed, K.K. Venkatesan, S.A. Jalaludeen, A review on various surface plasmon resonance-based sensors. Plasmonics 20(8), 6869–6885 (2025)

Article  Google Scholar 

R. Zegadi, A. Zegadi, C. Zebiri, S. Mosbah, S. Mekki, M.L. Bouknia, H. Bendjedi, Enhanced 2D photonic crystal sensor for high sensitivity sulfuric acid (H2SO4) and hydrogen peroxide (H2O2) detection. SILICON 14(16), 11001–11006 (2022)

Article  Google Scholar 

B. Painam, R.S. Kaler, M. Kumar, Photonic crystal waveguide biochemical sensor for the approximation of chemical components concentrations. Plasmonics 12(3), 899–904 (2017)

Article  Google Scholar 

S. Robinson, R. Nakkeeran, PC based optical salinity sensor for different temperatures. Photon. Sens. 2(2), 187–192 (2012)

Article  ADS  Google Scholar 

M.H. Jokar, A. Naraghi, M. Seifouri, S. Olyaee, Design of bio-alcohol sensor based on waveguide-coupled photonic crystal cavity. Results Opt. 13, 100563 (2023)

Article  Google Scholar 

Mehdi, G., & Hocini, A. (2019, November). Design of bio-alcohol sensor based on two-dimensional photonic crystal in a nanophotonic structure. In 2019 International Conference on Advanced Electrical Engineering (ICAEE) (pp. 1–6). IEEE. , (2019)

R.J. Sugesh, N.R.G. Sreevani, V.R. Balaji, M. Soroosh, High-performance 2D photonic crystal sensor for simultaneous detection of chemical and biological analytes. J. Optics. (2025). https://doi.org/10.1007/s12596-025-02889-z

Article  Google Scholar 

G.K. Celler, S. Cristoloveanu, Frontiers of silicon-on-insulator. J. Appl. Phys. 93(9), 4955–4978 (2003)

Article  ADS  Google Scholar 

S. Mohammadi, A.A. Eftekhar, A. Khelif, H. Moubchir, R. Westafer, W.D. Hunt, A. Adibi, Complete phononic bandgaps and bandgap maps in two-dimensional silicon phononic crystal plates. Electron. Lett. 43(16), 898–899 (2007)

Article  ADS  Google Scholar 

J.B. Pendry, Calculating photonic band structure. J. Phys. Condens. Matter 8(9), 1085–1108 (1996)

Article  ADS  Google Scholar 

M.M. Hamed, N.A. Mohammed, K.A. Badawi, A compact 2-D photonic crystal biomedical sensor for enhanced glucose concentration detection in urine. Sci. Rep. 15(1), 4905 (2025)

Article  ADS  Google Scholar 

I.M. White, X. Fan, On the performance quantification of resonant refractive index sensors. Opt. Express 16(2), 1020–1028 (2008)

Article  ADS  Google Scholar 

Q. Qiao, J. Xia, C. Lee, G. Zhou, Applications of photonic crystal nanobeam cavities for sensing. Micromachines 9(11), 541 (2018)

Article  Google Scholar 

L. Pang, W. Nakagawa, Y. Fainman, Fabrication of two-dimensional photonic crystals with controlled defects by use of multiple exposures and direct write. Appl. Opt. 42(27), 5450–5456 (2003)

Article  ADS  Google Scholar 

S. Cabrini, A. Carpentiero, R. Kumar, L. Businaro, P. Candeloro, M. Prasciolu, E. Di Fabrizio, Focused ion beam lithography for two dimensional array structures for photonic applications. Microelect Eng 78, 11–15 (2005)

Article  Google Scholar 

K. Ishihara, M. Fujita, I. Matsubara, T. Asano, S. Noda, H. Ohata, N. Shimoji, Organic light-emitting diodes with photonic crystals on glass substrate fabricated by nanoimprint lithography. App. Phy. Let. (2007). https://doi.org/10.1063/1.2713237

Article  Google Scholar 

J. Stodolka, D. Nau, M. Frommberger, C. Zanke, H. Giessen, E. Quandt, Fabrication of two-dimensional hybrid photonic crystals utilizing electron beam lithography. Microelectron. Eng. 78, 442–447 (2005)

Article  Google Scholar 

V. Fallahi, M. Hosseini, Z. Kordrostami, Analysis of manufacturing process errors on the functionality of photonic crystal sensors. IEEE Sens. J. (2025). https://doi.org/10.1109/jsen.2025.3589328

Article  Google Scholar 

S. Xiao, R. Vahldieck, An efficient 2-D FDTD algorithm using real variables (guided wave structure analysis). IEEE Microw. Guid. Wave Lett. 3(5), 127–129 (1993)

Article  ADS  Google Scholar 

A. Taflove, S.C. Hagness, M. Piket-May, Computational electromagnetics: the finite-difference time-domain method. Electr. Eng. Handbook 3(629–670), 15 (2005)

Google Scholar 

K. Yee, Numerical solution of initial boundary value problems involving Maxwell’s equations in isotropic media. IEEE Trans. Antennas Propag. 14(3), 302–307 (1966)

Article  ADS  Google Scholar 

Comments (0)

No login
gif