Temperature Dependent Enlargement of Photonic Bandgaps in a Superconductor Photonic Crystal

被引:0
作者
Pandey, Alok Kumar [1 ]
Pandey, Girijesh Narayan [2 ]
Kumar, Narendra [3 ]
Pandey, J. P. [3 ]
机构
[1] MLK PG Coll, Dept Phys, Balrampur 271201, Uttar Pradesh, India
[2] Amity Univ, Amity Inst Appl Sci, Dept Appl Phys, Noida 201303, Uttar Pradesh, India
[3] Mody Univ Sci & Technol, Dept Phys, SLAS, Sikar 332311, Rajasthan, India
关键词
3D spectrum; enlarged bandgap; superconducting material; temperature variation; transmission; tunable; MODE; DESIGN;
D O I
10.1002/masy.202100519
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
In the present simulation, the study theoretically investigates the effect of temperature on the bandgaps of a 1D superconductor-dielectric photonic crystal with different thicknesses of the semiconducting layer, for a fixed lattice parameter d. For this study, the alternate layers of superconductor and dielectric materials are taken as the SPC. In this work, 3D transmission spectra of the SPC against wavelength and temperature is plotted, for three chosen values of the thickness of the semiconducting layer. The study finds that, an increase in temperature causes enlargement in the two bandgaps obtained for a fixed thickness of the semiconducting layer, while there is less impact of temperature on the first bandgap. On the other hand, the study notices that a decrease in the thickness of the semiconducting layer decreases these two obtained enlarged bangaps. Hence, it is demonstrated that temperature and semiconducting layer thickness are the controlling factors for the bandgap widths, and these two parameters also tune the band locations, particularly of the second band obtained in higher wavelength range. This analysis can be employed in designing bandgap based temperature sensors and in switching devices.
引用
收藏
页数:4
相关论文
共 50 条
  • [31] Photonic crystal vertical-cavity surface-emitting lasers with true photonic bandgap
    Panajotov, Krassimir
    Dems, Maciej
    OPTICS LETTERS, 2010, 35 (06) : 829 - 831
  • [32] Broadband dispersion compensating photonic crystal fiber
    Lucki, Michal
    Zeleny, Richard
    PHOTONICS, DEVICES, AND SYSTEMS V, 2011, 8306
  • [33] Analysis of amplification properties of a photonic crystal fiber
    Eftekharinia, B.
    Parvin, P.
    Habibiyan, H.
    Hoseinzadeh, H.
    OPTIK, 2014, 125 (04): : 1565 - 1571
  • [34] Optofluidic photonic crystal slow light coupler
    Hosseinpour, Mehdi
    Ebnali-Heidari, Majid
    Kamali, Mehdi
    Emami, Hossein
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2013, 30 (03) : 717 - 722
  • [35] Slotted Photonic Crystal Sensors
    Scullion, Mark G.
    Krauss, Thomas F.
    Di Falco, Andrea
    SENSORS, 2013, 13 (03): : 3675 - 3710
  • [36] Photonic Crystal Fiber Attenuator
    Joo Beom Eom
    Hokyung Kim
    Jinchae Kim
    Un-Chul Paek
    Byeong Ha Lee
    光学学报, 2003, (S1) : 13 - 14
  • [37] Photonic Crystal Microchip Laser
    Gailevicius, Darius
    Koliadenko, Volodymyr
    Purlys, Vytautas
    Peckus, Martynas
    Taranenko, Victor
    Staliunas, Kestutis
    SCIENTIFIC REPORTS, 2016, 6
  • [38] Thermo-optical properties of binary one dimensional annular photonic crystal including temperature dependent constituents
    Abadla, Mazen M.
    Elsayed, Hussein A.
    Mehaney, Ahmed
    PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2020, 119
  • [39] A general strategy to fabricate photonic crystal heterostructure with Programmed photonic stopband
    Zhang, Lijing
    Liu, Bofan
    Wang, Jie
    Tao, Shengyang
    Yan, Qingfeng
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2018, 509 : 318 - 326
  • [40] Temperature-based dispersion compensating ability of a photonic crystal fiber
    Tiwari, Subhashish
    Dixit, Achyutesh
    Pandey, Praveen C.
    OPTICAL ENGINEERING, 2022, 61 (01)