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Erschienen in: Optical and Quantum Electronics 8/2018

01.08.2018

Optical Toffoli and Feynman reversible gates designing using DNA transmission lines

verfasst von: Sepideh Ebrahimi, Reza Sabbaghi-Nadooshan, Mohammad Bagher Tavakoli

Erschienen in: Optical and Quantum Electronics | Ausgabe 8/2018

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Abstract

Optical gates based on switchable material have become a focus of investigation. The present study designs an optical gate that uses DNA transmission lines and developed for Feynman and Toffoli reversible gates. It is shown that the implementation of a transmission line such as Ag/DNA/Ag produces a structure with high-quality switching. The switching characteristics of DNA were considered when designing the basic transmission line. The “On” mode is assumed for DNA with low conductivity. As conductivity increases, the line switches to the “Off” mode. A conceptual design is proposed in the present study for Feynman and Toffoli reversible gates for an optical regime at 300 THz based on DNA switching. A conceptual model is developed with an Ag/DNA/Ag transmission line controlled by changing the DNA bias. This transmission line provides a “Yes” gate, which is necessary for a reversible gate. The full wave time domain method was used to model the optical gates. The current work discusses how a DNA memristor can be used to design a compact reversible gate having a simple structure and high switching quality for use in optical systems.

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Literatur
Zurück zum Zitat Chattopadhyay, T.: All-optical reversible network design using microring resonators. IEEE J. Quantum Electron. 51(4), 1–8 (2015)CrossRef Chattopadhyay, T.: All-optical reversible network design using microring resonators. IEEE J. Quantum Electron. 51(4), 1–8 (2015)CrossRef
Zurück zum Zitat Diedrich, D., Rottler, A., Heitmann, D., Mendach, S.: Metal-dielectric metamaterials for transformation-optics and gradient-index devices in the visible regime. New J. Phys. 14(5), 053042 (2012)ADSCrossRef Diedrich, D., Rottler, A., Heitmann, D., Mendach, S.: Metal-dielectric metamaterials for transformation-optics and gradient-index devices in the visible regime. New J. Phys. 14(5), 053042 (2012)ADSCrossRef
Zurück zum Zitat Dolatabady, A., Granpayeh, N.: All optical logic gates based on two dimensional plasmonic waveguides with nanodisk resonators. J. Opt. Soc. Korea 16(4), 432–442 (2012)CrossRef Dolatabady, A., Granpayeh, N.: All optical logic gates based on two dimensional plasmonic waveguides with nanodisk resonators. J. Opt. Soc. Korea 16(4), 432–442 (2012)CrossRef
Zurück zum Zitat Emboras, A., Goykhman, I., Desiatov, B., Mazurski, N., Stern, L., Shappir, J., Levy, U.: Nanoscale plasmonic memristor with optical readout functionality. Nano Lett. 13(12), 6151–6155 (2013)ADSCrossRef Emboras, A., Goykhman, I., Desiatov, B., Mazurski, N., Stern, L., Shappir, J., Levy, U.: Nanoscale plasmonic memristor with optical readout functionality. Nano Lett. 13(12), 6151–6155 (2013)ADSCrossRef
Zurück zum Zitat Genot, A.J., Bath, J., Turberfield, A.J.: Reversible logic circuits made of DNA. J. Am. Chem. Soc. 133(50), 20080–20083 (2011)CrossRef Genot, A.J., Bath, J., Turberfield, A.J.: Reversible logic circuits made of DNA. J. Am. Chem. Soc. 133(50), 20080–20083 (2011)CrossRef
Zurück zum Zitat Haghparast, M., Jassbi, S.J., Navi, K., Hashemipour, O.: Design of a novel reversible multiplier circuit using HNG gate in nanotechnology. World Appl. Sci. J. 3(6), 974–978 (2008) Haghparast, M., Jassbi, S.J., Navi, K., Hashemipour, O.: Design of a novel reversible multiplier circuit using HNG gate in nanotechnology. World Appl. Sci. J. 3(6), 974–978 (2008)
Zurück zum Zitat Hoessbacher, C., Fedoryshyn, Y., Emboras, A., Melikyan, A., Kohl, M., Hillerkuss, D., Hafner, C., Leuthold, J.: The plasmonic memristor: a latching optical switch. Optica 1(4), 198–202 (2014)CrossRef Hoessbacher, C., Fedoryshyn, Y., Emboras, A., Melikyan, A., Kohl, M., Hillerkuss, D., Hafner, C., Leuthold, J.: The plasmonic memristor: a latching optical switch. Optica 1(4), 198–202 (2014)CrossRef
Zurück zum Zitat Hung, Y.-C., Hsu, W.-T., Lin, T.-Y., Fruk, L.: Photoinduced write-once read-many-times memory device based on DNA biopolymer nanocomposite. Appl. Phys. Lett. 99(25), 277 (2011)CrossRef Hung, Y.-C., Hsu, W.-T., Lin, T.-Y., Fruk, L.: Photoinduced write-once read-many-times memory device based on DNA biopolymer nanocomposite. Appl. Phys. Lett. 99(25), 277 (2011)CrossRef
Zurück zum Zitat Kumar, S., Raghuwanshi, S.K.: Design of optical reversible logic gates using electro-optic effect of lithium niobate based Mach–Zehnder interferometers. Appl. Opt. 55(21), 5693–5701 (2016)ADSCrossRef Kumar, S., Raghuwanshi, S.K.: Design of optical reversible logic gates using electro-optic effect of lithium niobate based Mach–Zehnder interferometers. Appl. Opt. 55(21), 5693–5701 (2016)ADSCrossRef
Zurück zum Zitat Li, Z., Zhu, Z., Liu, W., Zhou, Y., Han, B., Gao, Y., Tang, Z.: Reversible plasmonic circular dichroism of Au nanorod and DNA assemblies. J. Am. Chem. Soc. 134(7), 3322–3325 (2012)CrossRef Li, Z., Zhu, Z., Liu, W., Zhou, Y., Han, B., Gao, Y., Tang, Z.: Reversible plasmonic circular dichroism of Au nanorod and DNA assemblies. J. Am. Chem. Soc. 134(7), 3322–3325 (2012)CrossRef
Zurück zum Zitat Liu, Y.-S., Banada, P.P., Bhattacharya, S., Bhunia, A.K., Bashir, R.: Electrical characterization of DNA molecules in solution using impedance measurements. Appl. Phys. Lett. 92(14), 143902 (2008)ADSCrossRef Liu, Y.-S., Banada, P.P., Bhattacharya, S., Bhunia, A.K., Bashir, R.: Electrical characterization of DNA molecules in solution using impedance measurements. Appl. Phys. Lett. 92(14), 143902 (2008)ADSCrossRef
Zurück zum Zitat Liu, X., Aizen, R., Freeman, R., Yehezkeli, O., Willner, I.: Multiplexed aptasensors and amplified DNA sensors using functionalized graphene oxide: application for logic gate operations. ACS Nano 6(4), 3553–3563 (2012)CrossRef Liu, X., Aizen, R., Freeman, R., Yehezkeli, O., Willner, I.: Multiplexed aptasensors and amplified DNA sensors using functionalized graphene oxide: application for logic gate operations. ACS Nano 6(4), 3553–3563 (2012)CrossRef
Zurück zum Zitat McCutcheon, M.W., Rieger, G.W., Young, J.F., Dalacu, D., Poole, P.J., Williams, R.L.: All-optical conditional logic with a nonlinear photonic crystal nanocavity. Appl. Phys. Lett. 95(22), 221102 (2009)ADSCrossRef McCutcheon, M.W., Rieger, G.W., Young, J.F., Dalacu, D., Poole, P.J., Williams, R.L.: All-optical conditional logic with a nonlinear photonic crystal nanocavity. Appl. Phys. Lett. 95(22), 221102 (2009)ADSCrossRef
Zurück zum Zitat Nozhat, N., Granpayeh, N.: All-optical logic gates based on nonlinear plasmonic ring resonators. Appl. Opt. 54(26), 7944–7948 (2015)ADSCrossRef Nozhat, N., Granpayeh, N.: All-optical logic gates based on nonlinear plasmonic ring resonators. Appl. Opt. 54(26), 7944–7948 (2015)ADSCrossRef
Zurück zum Zitat Nozhat, N., Alikomak, H., Khodadadi, M.: All-optical XOR and NAND logic gates based on plasmonic nanoparticles. Opt. Commun. 392, 208–213 (2017)ADSCrossRef Nozhat, N., Alikomak, H., Khodadadi, M.: All-optical XOR and NAND logic gates based on plasmonic nanoparticles. Opt. Commun. 392, 208–213 (2017)ADSCrossRef
Zurück zum Zitat Ooi, K.J.A., Chu, H.S., Bai, P., Ang, L.K.: Electro-optical graphene plasmonic logic gates. Opt. Lett. 39(6), 1629–1632 (2014)ADSCrossRef Ooi, K.J.A., Chu, H.S., Bai, P., Ang, L.K.: Electro-optical graphene plasmonic logic gates. Opt. Lett. 39(6), 1629–1632 (2014)ADSCrossRef
Zurück zum Zitat Park, S.-J., Taton, T.A., Mirkin, C.A.: Array-based electrical detection of DNA with nanoparticle probes. Science 295(5559), 1503–1506 (2002)ADS Park, S.-J., Taton, T.A., Mirkin, C.A.: Array-based electrical detection of DNA with nanoparticle probes. Science 295(5559), 1503–1506 (2002)ADS
Zurück zum Zitat Qin, S., Dong, R., Yan, X., Qianqian, D.: A reproducible write–(read) n–erase and multilevel bio-memristor based on DNA molecule. Org. Electron. 22, 147–153 (2015)CrossRef Qin, S., Dong, R., Yan, X., Qianqian, D.: A reproducible write–(read) n–erase and multilevel bio-memristor based on DNA molecule. Org. Electron. 22, 147–153 (2015)CrossRef
Zurück zum Zitat Sepideh, E., Sabbaghi-Nadooshan, R., Tavakoli, M.B.: DNA implementation for optical waveguide as a switchable transmission line and memristor. Opt. Quant. Electron. 50(4), 196 (2018)CrossRef Sepideh, E., Sabbaghi-Nadooshan, R., Tavakoli, M.B.: DNA implementation for optical waveguide as a switchable transmission line and memristor. Opt. Quant. Electron. 50(4), 196 (2018)CrossRef
Zurück zum Zitat Sethi, P., Roy, S.: Ultrafast all-optical reversible Peres and Feynman-double logic gates with silicon microring resonators. In: Gavrilova, M.L., Tan, C.J.K., Thapliyal, H., Ranganathan, N. (eds.) Transactions on Computational Science XXIV, pp. 21–36. Springer, Heidelberg (2014a) Sethi, P., Roy, S.: Ultrafast all-optical reversible Peres and Feynman-double logic gates with silicon microring resonators. In: Gavrilova, M.L., Tan, C.J.K., Thapliyal, H., Ranganathan, N. (eds.) Transactions on Computational Science XXIV, pp. 21–36. Springer, Heidelberg (2014a)
Zurück zum Zitat Sethi, P., Roy, S.: All-optical ultrafast XOR/XNOR logic gates, binary counter, and double-bit comparator with silicon microring resonators. Appl. Opt. 53(28), 6527–6536 (2014b)ADSCrossRef Sethi, P., Roy, S.: All-optical ultrafast XOR/XNOR logic gates, binary counter, and double-bit comparator with silicon microring resonators. Appl. Opt. 53(28), 6527–6536 (2014b)ADSCrossRef
Zurück zum Zitat Sun, B., Zhang, X., Zhou, G., Li, P., Zhang, Y., Wang, H., Xia, Y., Zhao, Y.: An organic nonvolatile resistive switching memory device fabricated with natural pectin from fruit peel. Org. Electron. 42, 181–186 (2017)CrossRef Sun, B., Zhang, X., Zhou, G., Li, P., Zhang, Y., Wang, H., Xia, Y., Zhao, Y.: An organic nonvolatile resistive switching memory device fabricated with natural pectin from fruit peel. Org. Electron. 42, 181–186 (2017)CrossRef
Zurück zum Zitat Thapliyal, H., Srinivas, M.B.: An extension to DNA based Fredkin gate circuits: design of reversible sequential circuits using Fredkin gates. In: Katagiri, Y. (ed.) Optomechatronic Micro/Nano Devices and Components, vol. 6050, pp. 196–202. International Society for Optics and Photonics, Bellingham (2005)CrossRef Thapliyal, H., Srinivas, M.B.: An extension to DNA based Fredkin gate circuits: design of reversible sequential circuits using Fredkin gates. In: Katagiri, Y. (ed.) Optomechatronic Micro/Nano Devices and Components, vol. 6050, pp. 196–202. International Society for Optics and Photonics, Bellingham (2005)CrossRef
Zurück zum Zitat Tsang, H.K., Wong, C.S., Liang, T.K., Day, I.E., Roberts, S.W., Harpin, A., Drake, J., Asghari, M.: Optical dispersion, two-photon absorption and self-phase modulation in silicon waveguides at 1.5 μm wavelength. Appl. Phys. Lett. 80(3), 416–418 (2002)ADSCrossRef Tsang, H.K., Wong, C.S., Liang, T.K., Day, I.E., Roberts, S.W., Harpin, A., Drake, J., Asghari, M.: Optical dispersion, two-photon absorption and self-phase modulation in silicon waveguides at 1.5 μm wavelength. Appl. Phys. Lett. 80(3), 416–418 (2002)ADSCrossRef
Zurück zum Zitat Wu, X., Tian, J., Yang, R.: A type of all-optical logic gate based on graphene surface plasmon polaritons. Opt. Commun. 403, 185–192 (2017)ADSCrossRef Wu, X., Tian, J., Yang, R.: A type of all-optical logic gate based on graphene surface plasmon polaritons. Opt. Commun. 403, 185–192 (2017)ADSCrossRef
Zurück zum Zitat Xu, G., Cao, M., Liu, C., Sun, J., Pan, T.: Tunable surface plasmon-polaritons in a gyroelectric slab sandwiched between two graphene layers. Opt. Commun. 366, 112–118 (2016)ADSCrossRef Xu, G., Cao, M., Liu, C., Sun, J., Pan, T.: Tunable surface plasmon-polaritons in a gyroelectric slab sandwiched between two graphene layers. Opt. Commun. 366, 112–118 (2016)ADSCrossRef
Zurück zum Zitat Younis, R.M., Areed, N.F., Obayya, S.S.: Fully integrated AND and OR optical logic gates. IEEE Photonics Technol. Lett. 26(19), 1900–1903 (2014)ADSCrossRef Younis, R.M., Areed, N.F., Obayya, S.S.: Fully integrated AND and OR optical logic gates. IEEE Photonics Technol. Lett. 26(19), 1900–1903 (2014)ADSCrossRef
Zurück zum Zitat Zarrabi, F.B., Bazgir, M., Naser-Moghadasi, M., Arezoomand, A.S.: Symmetrical metamaterial nano particle for improving the Fano mode for biological application at mid infrared. Opt. Int. J. Light Electron Opt. 130, 1191–1196 (2017)CrossRef Zarrabi, F.B., Bazgir, M., Naser-Moghadasi, M., Arezoomand, A.S.: Symmetrical metamaterial nano particle for improving the Fano mode for biological application at mid infrared. Opt. Int. J. Light Electron Opt. 130, 1191–1196 (2017)CrossRef
Zurück zum Zitat Zhou, X., Zhang, T., Chen, L., Hong, W., Li, X.: A graphene-based hybrid plasmonic waveguide with ultra-deep subwavelength confinement. J. Lightwave Technol. 32(21), 3597–3601 (2014)ADS Zhou, X., Zhang, T., Chen, L., Hong, W., Li, X.: A graphene-based hybrid plasmonic waveguide with ultra-deep subwavelength confinement. J. Lightwave Technol. 32(21), 3597–3601 (2014)ADS
Metadaten
Titel
Optical Toffoli and Feynman reversible gates designing using DNA transmission lines
verfasst von
Sepideh Ebrahimi
Reza Sabbaghi-Nadooshan
Mohammad Bagher Tavakoli
Publikationsdatum
01.08.2018
Verlag
Springer US
Erschienen in
Optical and Quantum Electronics / Ausgabe 8/2018
Print ISSN: 0306-8919
Elektronische ISSN: 1572-817X
DOI
https://doi.org/10.1007/s11082-018-1590-1

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