171
Views
1
CrossRef citations to date
0
Altmetric
Research Article

Design of a 2D photonic crystal biosensor using X-shape ring resonator based on Graphene Oxide (GO) for detection of blood components

& ORCID Icon
Pages 2401-2418 | Received 25 Jul 2021, Accepted 17 May 2022, Published online: 30 May 2022

References

  • Rebhi S, Najjar M. Hourglass nonlinear photonic crystal cavity for ultra-fast all-optical switching. Optik. 2019;180:858–865.
  • Das G, Sahu NK, Sharma A, et al. Dielectric resonator-based four-element eight-port MIMO antenna with multi-directional pattern diversity. IET Microwaves Antennas Propag. 2019;13(1):16–22.
  • Fallahi V, Seifouri M, Mohammadi M. A new design of optical add/drop filters and multi-channel filters based on hexagonal PhCRR for WDM systems. Photonic Network Commun. 2019;37(1):100–109.
  • Francis H, Chen S, Che K-J, et al. Photonic crystal cavity-based intensity modulation for integrated optical frequency comb generation. Crystals. 2019;9(10):493.
  • Marty G, Combrié S, Raineri F, et al. Photonic crystal optical parametric oscillator. Nat Photonics. 2021;15(1):53–58.
  • Rodriguez GA, Markov P, Cartwright AP, et al. Photonic crystal nanobeam biosensors based on porous silicon. Opt Exp. 2019;27(7):9536–9549.
  • Zheng J, Yang X, Zhang X, et al. Transmission characteristics of one-dimensional periodic optical waveguide networks. Phys Rev A. 2019;99(2):023809.
  • Gao X, Ning T, Zhang C, et al. A dual-parameter fiber sensor based on few-mode fiber and fiber Bragg grating for strain and temperature sensing. Opt Commun. 2020;454:124441.
  • Ghosh R, Ghosh K, Chakraborty R. High resolution wide range pressure sensor using hexagonal ring and micromachined cantilever tips on 2D silicon photonic crystal. Opt Commun. 2019;431:93–100.
  • El Shamy RS, Khalil D, Swillam MA. Mid infrared optical gas sensor using plasmonic Mach-Zehnder interferometer. Sci Rep. 2020;10(1):1–9.
  • Mohammed NA, Hamed MM, Khalaf AA, et al. High-sensitivity ultra-quality factor and remarkable compact blood components biomedical sensor based on nanocavity coupled photonic crystal. Results Phys. 2019;14:102478.
  • Galeotti F, Vollenbroek IS, Petruzzella M, et al. On-chip photocurrent displacement sensor based on a waveguide-coupled nanomechanical photonic crystal cavity. In: Book On-chip photocurrent displacement sensor based on a waveguide-coupled nanomechanical photonic crystal cavity. Optical Society of America; 2019. p. ch_5_3.
  • Elsayed HA, Sayed FA, Aly AH. Graphene deposited liquid crystal and thermal sensitivity using photonic crystals. Physica Scripta. 2021;96(3):035503.
  • Andueza A, Pérez-Conde J, Sevilla J. Strain sensing based on resonant states in 2D dielectric photonic quasicrystals. Opt Exp. 2021;29(5):6980–6990.
  • Wei X, Bian F, Cai X, et al. Multiplexed detection strategy for bladder cancer microRNAs based on photonic crystal barcodes. Anal Chem. 2020;92(8):6121–6127.
  • Sani MH, Khosroabadi S. A novel design and analysis of high-sensitivity biosensor based on nano-cavity for detection of blood component, diabetes, cancer and glucose concentration. IEEE Sens J. 2020;20(13):7161–7168.
  • Khoder R, Korri-Youssoufi H. E-DNA biosensors of M. tuberculosis based on nanostructured polypyrrole. Mater Sci Eng: C. 2020;108:110371.
  • Mohammed NA, Hamed MM, Khalaf AA, et al. Malaria biosensors with ultra-sensitivity and quality factor based on cavity photonic crystal designs. Eur Phys J Plus. 2020;135(11):1–22.
  • Lozada MJ, Cai S, Li M, et al. The Las vegas mass shooting: an analysis of blood component administration and blood bank donations. J Trauma Acute Care Surg. 2019;86(1):128–133.
  • Arunkumar R, Suaganya T, Robinson S. Design and analysis of 2D photonic crystal based biosensor to detect different blood components. Photonic Sens. 2019;9(1):69–77.
  • Pretini V, Koenen MH, Kaestner L, et al. Red blood cells: chasing interactions. Front Physiol. 2019;10:945.
  • Siedlinski M, Jozefczuk E, Xu X, et al. White blood cells and blood pressure: a Mendelian randomization study. Circulation. 2020;141(16):1307–1317.
  • Sun Y, Myers DR, Nikolov SV, et al. Platelet heterogeneity enhances blood clot volumetric contraction: an example of asynchrono-mechanical amplification. Biomaterials. 2021;274:120828.
  • Bogaerts A, Tu X, Whitehead JC, et al. The 2020 plasma catalysis roadmap. J Phys D: Appl Phys. 2020;53(44):443001.
  • Chopra H, Kaler RS, Painam B. Photonic crystal waveguide-based biosensor for detection of diseases. J Nanophotonics. 2016;10(3):036011.
  • Benmerkhi A, Bouchemat M, Bouchemat T. Computational study of photonic crystal resonator for biosensor application. Frequenz. 2019;73(9-10):307–316.
  • Mohammadi M, Seifouri M, Boyerahmadi E, et al. Exploring refractive index ultra compact nano sensor using photonic crystal resonant cavities. J Comput Theor Nanosci. 2020;17(7):2926–2931.
  • Smith AT, LaChance AM, Zeng S, et al. Synthesis, properties, and applications of graphene oxide/reduced graphene oxide and their nanocomposites. Nano Mater Sci. 2019;1(1):31–47.
  • Bilal R, Baqir M, Choudhury P, et al. Ultrathin broadband metasurface-based absorber comprised of tungsten nanowires. Results Phys 2020;19:103471.
  • Baqir M, Choudhury P, Mughal M. Gold nanowires-based hyperbolic metamaterial multiband absorber operating in the visible and near-infrared regimes. Plasmonics. 2019;14(2):485–492.
  • Baqir M, Naqvi S. Electrically tunable terahertz metamaterial absorber comprised Cu/graphene strips. Plasmonics. 2020;15(6):2205–2211.
  • Baqir M, Choudhury P, Fatima T, et al. Graphene-over-graphite-based metamaterial structure as optical filter in the visible regime. Optik. 2019;180:832–839.
  • Naveed MA, Bilal RMH, Baqir MA, et al. Ultrawideband fractal metamaterial absorber made of nickel operating in the UV to IR spectrum. Opt Exp. 2021;29(26):42911–42923.
  • Baqir MA. Wide-band and wide-angle, visible-and near-infrared metamaterial-based absorber made of nanoholed tungsten thin film. Opt Mater Exp. 2019;9(5):2358–2367.
  • Bilal R, Saeed M, Choudhury P, et al. Elliptical metallic rings-shaped fractal metamaterial absorber in the visible regime. Sci Rep. 2020;10(1):1–12.
  • Gurunathan S, Han JW, Eppakayala V, et al. Green synthesis of graphene and its cytotoxic effects in human breast cancer cells. Int J Nanomed. 2013;8:1015.
  • Al-Gaashani R, Najjar A, Zakaria Y, et al. XPS and structural studies of high quality graphene oxide and reduced graphene oxide prepared by different chemical oxidation methods. Ceram Int. 2019;45(11):14439–14448.
  • Song P, Liu B, Liang C, et al. Lightweight, flexible cellulose-derived carbon aerogel@ reduced graphene oxide/PDMS composites with outstanding EMI shielding performances and excellent thermal conductivities. Nano-Micro Lett. 2021;13(1):1–17.
  • Jeyaseelan A, Ghfar AA, Naushad M, et al. Design and synthesis of amine functionalized graphene oxide for enhanced fluoride removal. J Environ Chem Eng. 2021;9(4):105384.
  • Guo X, Zheng X, Hu X, et al. Electrostatic adsorbing graphene quantum dot into nickel–based layered double hydroxides: Electron absorption/donor effects enhanced oxygen electrocatalytic activity. Nano Energy. 2021;84:105932.
  • Wang Q, Jing J-Y, Wang B-T. Highly sensitive SPR biosensor based on graphene oxide and staphylococcal protein a co-modified TFBG for human IgG detection. IEEE Trans Instrum Meas. 2018;68(9):3350–3357.
  • Majumder S, Deen MJ. Smartphone sensors for health monitoring and diagnosis. Sensors. 2019;19(9):2164.
  • Nguyen TG, Mitchell A. Analysis of optical waveguides with multilayer dielectric coatings using plane wave expansion. J Lightwave Technol. 2006;24(1):635.
  • Schneider JB. Understanding the finite-difference time-domain method. School of electrical engineering and computer science Washington State University; 2010, pp. 28.
  • Schmiedova V, Pospisil J, Kovalenko A, et al. Physical properties investigation of reduced graphene oxide thin films prepared by material inkjet printing. J Nanomater. 2017;2017:3501903.
  • Arafa S, Bouchemat M, Bouchemat T, et al. Infiltrated photonic crystal cavity as a highly sensitive platform for glucose concentration detection. Opt Commun. 2017;384:93–100.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.