An array of QDs on a one-dimensional periodic structure of graphene nanoribbons as a nanoscale plasmonic grating

被引:0
|
作者
Sahar Armaghani
Ali Rostami
Hamit Mirtagioglu
机构
[1] University of Tabriz,Photonics and Nanocrystal Research Laboratory (PNRL), Faculty of Electrical and Computer Engineering
[2] University of Bitlis Eren,Department of Statistics, Faculty of Science and Literature
来源
关键词
Photonic crystal; Plasmonic structure; Graphene nanoribbon; PdSe quantum dot; Susceptibility; SPP interaction;
D O I
暂无
中图分类号
学科分类号
摘要
This work focused on developing nanoscale plasmonic gratings and photonic crystals using unique quantum structures, specifically Graphene nanoribbons and PbSe quantum dots, within a metal-dielectric-metal (MIM) multilayer waveguide structure. These structures are designed to operate at a wavelength of 1550 nm and exploit the interaction between electromagnetic waves and free electrons to excite surface plasmon polaritons (SPPs) to create unique optical susceptibility for the nanostructures considering the possibility of control of the chemical potential of the Graphene nanoribbon. The primary goal of this research is to create nanoscale optical devices based on photonic crystals with improved capabilities by incorporating plasmonic structures, such as Graphene nanoribbons and PbSe quantum dots, to manipulate light at the nanoscale. These are sheets of graphene with specific dimensions (775 × 40 nm2) that are bonded to a SiO2 platform. An array of PbSe quantum dots with a radius of 10 nm is placed on the nanoribbons. This waveguide structure is used to confine and guide electromagnetic waves. The system operates at a wavelength of 1550 nm, which is within the optical telecommunication band. The nanostructure interacts with incident electromagnetic waves, exciting surface plasmon polaritons (SPPs) within the MIM waveguide. This excitation induces polarization in the PbSe quantum dots, leading to changes in the amplitude of the incident wave. The induced dipoles in the quantum dots result in a unique optical susceptibility for the nanostructure. This susceptibility depends on the geometry and optical constants of the materials used in the structure. The research aims to provide a foundation for using these nanostructures in photonic crystal-based optical devices in the future. These devices may have applications in various fields, such as telecommunications, sensors, and integrated photonics. Overall, this work focused on harnessing plasmonic and quantum properties to develop advanced nanoscale optical components, and the results could have implications for the development of next-generation photonic devices.
引用
收藏
相关论文
共 50 条
  • [31] One-dimensional confinement and width-dependent bandgap formation in epitaxial graphene nanoribbons
    Karakachian, Hrag
    Nguyen, T. T. Nhung
    Aprojanz, Johannes
    Zakharov, Alexei A.
    Yakimova, Rositsa
    Rosenzweig, Philipp
    Polley, Craig M.
    Balasubramanian, Thiagarajan
    Tegenkamp, Christoph
    Power, Stephen R.
    Starke, Ulrich
    NATURE COMMUNICATIONS, 2020, 11 (01)
  • [32] Resonant peak splitting in graphene superlattices with one-dimensional periodic potentials
    Xu, Yi
    He, Ying
    Yang, Yanfang
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2014, 115 (03): : 721 - 729
  • [33] Resonant peak splitting in graphene superlattices with one-dimensional periodic potentials
    Yi Xu
    Ying He
    Yanfang Yang
    Applied Physics A, 2014, 115 : 721 - 729
  • [34] Magnetothermoelectric transport properties in graphene superlattices with one-dimensional periodic potentials
    Ma, R.
    Sheng, L.
    EPL, 2015, 109 (01)
  • [35] Tunable THz Graphene Plasmonic Filter Based on One-Dimensional Photonic Quasicrystals
    Zhong, Yibing
    Yu, Yinshan
    Shi, Shengli
    Gao, Mingxing
    Wang, Yuhao
    Lv, Chunyan
    ACTA PHYSICA POLONICA A, 2020, 138 (06) : 763 - 769
  • [36] Lasing in a One-Dimensional Plasmonic Crystal
    Lakhani, Amit M.
    Kim, Myung-Ki
    Lau, Erwin K.
    Wu, Ming C.
    22ND IEEE INTERNATIONAL SEMICONDUCTOR LASER CONFERENCE, 2010, : 199 - 200
  • [37] ENHANCED ABSORPTION IN PERIODIC ONE-DIMENSIONAL METALLIC-ORGANIC PERIODIC STRUCTURE
    Thapa, K. B.
    Mishra, N. K.
    Pandey, G. N.
    Jagmandar
    Ojha, S. P.
    PROGRESS IN ELECTROMAGNETICS RESEARCH M, 2009, 8 : 221 - 233
  • [38] Heliconic band structure of one-dimensional periodic metallic composites
    Kee, CS
    Kim, JE
    Park, HY
    PHYSICAL REVIEW E, 1998, 57 (02): : 2327 - 2330
  • [39] ELECTRONS AND STRUCTURE OF QUASI-PERIODIC ONE-DIMENSIONAL CHAINS
    SCHMIDT, K
    SPRINGBORG, M
    SYNTHETIC METALS, 1993, 57 (2-3) : 4473 - 4478
  • [40] Heliconic band structure of one-dimensional periodic metallic composites
    Physical Review E. Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics, 1998, 57 (2-B):