Opto-Electronic Advances, Volume. 7, Issue 2, 230072-1(2024)

Generation of lossy mode resonances (LMR) using perovskite nanofilms

Dayron Armas1, Ignacio R. Matias1,2、*, M. Carmen Lopez-Gonzalez3, Carlos Ruiz Zamarreño1,2, Pablo Zubiate1, Ignacio del Villar1,2, and Beatriz Romero3
Author Affiliations
  • 1Electrical, Electronic and Communications Engineering Department, Public University of Navarra, Pamplona 31006, Spain
  • 2Institute of Smart Cities (ISC), Public University of Navarra, Pamplona 31006, Spain
  • 3Experimental Science and Technology School, Rey Juan Carlos University, Mostoles 28933, Spain
  • show less
    References(36)

    [1] Villar I Del, FJ Arregui, CR Zamarreño et al. Optical sensors based on lossy-mode resonances. Sens Actuators B Chem, 240, 174-185(2017).

    [2] FJ Arregui, Villar I Del, CR Zamarreño et al. Giant sensitivity of optical fiber sensors by means of lossy mode resonance. Sens Actuators B Chem, 232, 660-665(2016).

    [3] A Ozcariz, CR Zamarreño, P Zubiate et al. Is there a frontier in sensitivity with lossy mode resonance (LMR) based refractometers. Sci Rep, 7, 10280(2017).

    [4] Villar I Del, CR Zamarreño, M Hernaez et al. Lossy mode resonance generation with indium-tin-oxide-coated optical fibers for sensing applications. J Lightwave Technol, 28, 111-117(2010).

    [5] P Zubiate, CR Zamarreño, Villar I Del et al. High sensitive refractometers based on lossy mode resonances (LMRs) supported by ITO coated D-shaped optical fibers. Opt Express, 23, 8045-8050(2015).

    [6] SP Usha, BD Gupta. Performance analysis of zinc oxide-implemented lossy mode resonance-based optical fiber refractive index sensor utilizing thin film/nanostructure. Appl Opt, 56, 5716-5725(2017).

    [7] M Benítez, P Zubiate, Villar I Del et al. Lossy mode resonance based microfluidic platform developed on planar waveguide for biosensing applications. Biosensors, 12, 403(2022).

    [8] Villar I Del, CR Zamarreño, P Sanchez et al. Generation of lossy mode resonances by deposition of high-refractive-index coatings on uncladded multimode optical fibers. J Opt, 12, 095503(2010).

    [9] A Ozcariz, D A Piña-Azamar, CR Zamarreño et al. Aluminum doped zinc oxide (AZO) coated optical fiber LMR refractometers—an experimental demonstration. Sens Actuators B Chem, 281, 698-704(2019).

    [10] A Ozcariz, M Dominik, M Smietana et al. Lossy mode resonance optical sensors based on indium-gallium-zinc oxide thin film. Sens Actuators A Phys, 290, 20-27(2019).

    [11] K Kosiel, M Koba, M Masiewicz et al. Tailoring properties of lossy-mode resonance optical fiber sensors with atomic layer deposition technique. Opt Laser Technol, 102, 213-221(2018).

    [13] DP Sudas, LY Zakharov, VA Jitov et al. Silicon oxynitride thin film coating to lossy mode resonance fiber-optic refractometer. Sensors, 22, 3665(2022).

    [14] DL Bohorquez, Villar I Del, JM Corres et al. Generation of lossy mode resonances in a broadband range with multilayer coated coverslips optimized for humidity sensing. Sens Actuators B Chem, 325, 128795(2020).

    [15] C Elosua, FJ Arregui, CR Zamarreño et al. Volatile organic compounds optical fiber sensor based on lossy mode resonances. Sens Actuators B Chem, 173, 523-529(2012).

    [16] M Śmietana, M Koba, P Sezemsky et al. Simultaneous optical and electrochemical label-free biosensing with ITO-coated lossy-mode resonance sensor. Biosens Bioelectron, 154, 112050(2020).

    [17] F Chiavaioli, P Zubiate, Villar I Del et al. Femtomolar detection by nanocoated fiber label-free biosensors. ACS Sens, 3, 936-943(2018).

    [18] P Zubiate, A Urrutia, CR Zamarreño et al. Fiber-based early diagnosis of venous thromboembolic disease by label-free D-dimer detection. Biosens Bioelectron X, 2, 100026(2019).

    [19] I Dominguez, Villar I Del, O Fuentes et al. Interdigital concept in photonic sensors based on an array of lossy mode resonances. Sci Rep, 11, 13228(2021).

    [20] I Dominguez, Villar I Del, O Fuentes et al. Dually nanocoated planar waveguides towards multi-parameter sensing. Sci Rep, 11, 3669(2021).

    [21] Villar I Del, M Hernaez, CR Zamarreño et al. Design rules for lossy mode resonance based sensors. Appl Opt, 51, 4298-4307(2012).

    [22] WM Zhao, Q Wang. Analytical solutions to fundamental questions for lossy mode resonance. Laser Photon Rev, 17, 2200554(2023).

    [23] LM Wu, YJ Xiang, YW Qin. Lossy-mode-resonance sensor based on perovskite nanomaterial with high sensitivity. Opt Express, 29, 17602-17612(2021).

    [24] S Yadollahzadeh, R Aghbolaghi, R Parvizi. Perovskite-based lossy-mode resonance sensor in visible light spectrum: comparison and optimization of optical enhancements. Phys B Condens Matter, 640, 414048(2022).

    [25] A Fakharuddin, MK Gangishetty, M Abdi-Jalebi et al. Perovskite light-emitting diodes. Nat Electron, 5, 203-216(2022).

    [26] CL Li, HL Wang, F Wang et al. Ultrafast and broadband photodetectors based on a perovskite/organic bulk heterojunction for large-dynamic-range imaging. Light Sci Appl, 9, 31(2020).

    [27] S Deumel, Breemen A Van, G Gelinck et al. High-sensitivity high-resolution X-ray imaging with soft-sintered metal halide perovskites. Nat Electron, 4, 681-688(2021).

    [28] W Xu, FM Li, ZX Cai et al. An ultrasensitive and reversible fluorescence sensor of humidity using perovskite CH3NH3PbBr3. J Mater Chem C, 4, 9651-9655(2016).

    [29] MA Green, A Ho-Baillie, HJ Snaith. The emergence of perovskite solar cells. Nat Photonics, 8, 506-514(2014).

    [30] M Rubin. Optical properties of soda lime silica glasses. Sol Energy Mater, 12, 275-288(1985).

    [31] P Yeh, A Yariv, CS Hong. Electromagnetic propagation in periodic stratified media. I. General theory. J Opt Soc Am, 67, 423-438(1977).

    [32] AK Sharma, BD Gupta. On the sensitivity and signal to noise ratio of a step-index fiber optic surface plasmon resonance sensor with bimetallic layers. Opt Commun, 245, 159-169(2005).

    [33] Silva Filho JMC da, FC Marques. Growth of perovskite nanorods from PbS quantum dots. MRS Adv, 3, 1843-1848(2018).

    [34] KW Wu, A Bera, C Ma et al. Temperature-dependent excitonic photoluminescence of hybrid organometal halide perovskite films. Phys Chem Chem Phys, 16, 22476-22481(2014).

    [35] L Gil-Escrig, C Momblona, MG La-Placa et al. Vacuum deposited triple-cation mixed-halide perovskite solar cells. Adv Energy Mater, 8, 1703506(2018).

    [36] Villar I Del, CR Zamarreño, M Hernaez et al. Generation of lossy mode resonances with absorbing thin-films. J Lightwave Technol, 28, 3351-3357(2010).

    Tools

    Get Citation

    Copy Citation Text

    Dayron Armas, Ignacio R. Matias, M. Carmen Lopez-Gonzalez, Carlos Ruiz Zamarreño, Pablo Zubiate, Ignacio del Villar, Beatriz Romero. Generation of lossy mode resonances (LMR) using perovskite nanofilms[J]. Opto-Electronic Advances, 2024, 7(2): 230072-1

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Research Articles

    Received: May. 5, 2023

    Accepted: Aug. 29, 2023

    Published Online: May. 24, 2024

    The Author Email: Matias Ignacio R. (IRMatias)

    DOI:10.29026/oea.2024.230072

    Topics