Plasmonics of Normal and Inverted Core-Shell Nanostructures

Slides:



Advertisements
Similar presentations
Study of propagative and radiative behavior of printed dielectric structures using the finite difference time domain method (FDTD) Università “La Sapienza”,
Advertisements

Λ1λ1 λ2λ2 2λ22λ2 λ1λ1 λ2λ2 2λ22λ2 Enhancement of Second-Harmonic Generation through Plasmon Resonances in Silver Nanorods Nicholas Wang 1, Patrick McAvoy.
A New Design Tool for Nanoplasmonic Solar Cells using 3D Full Wave Optical Simulation with 1D Device Transport Models Liming Ji* and Vasundara V. Varadan.
Resonances and optical constants of dielectrics: basic light-matter interaction.
Lavinia P. Rajahram 18 th April 2014 NANO LASER. SHRINKING THE LASER!
Surface Enhanced Infrared Absorption (SEIRA) Spectroscopy
Higher Order Multipole Transition Effects in the Coulomb Dissociation Reactions of Halo Nuclei Dr. Rajesh Kharab Department of Physics, Kurukshetra University,
CHEM 515 Spectroscopy Lecture # 1.
Wave Nature of Light and Quantum Theory
May 25, 2007Bilkent University, Physics Department1 Optical Design of Waveguides for Operation in the Visible and Infrared Mustafa Yorulmaz Bilkent University,
Chapter 3 The Structure of the Atom In order to explain much of what is observed in chemistry, we need to adopt a model for the atom where the atom has.
Chapter 3 Light and Matter
Optical Properties of Metal Nanoparticles
EXAMPLE Young’s double-slit experiment is performed with 589-nm light and a distance of 2.00 m between the slits and the screen. The tenth interference.
Spectroscopy and Electron Configurations
Lab 12 Atomic spectra and atomic structure
Christopher Devulder, Slava V. Rotkin 1 Christopher Devulder, Slava V. Rotkin 1 1 Department of Physics, Lehigh University, Bethlehem, PA INTRODUCTION.
Numerical ElectroMagnetics & Semiconductor Industrial Applications Ke-Ying Su Ph.D. National Central University Department of Mathematics 11 NUFFT & Applications.
Modeling Plasmonic Effects in the Nanoscale Brendan McNamara, Andrei Nemilentsau and Slava V. Rotkin Department of Physics, Lehigh University Methodology.
Near Field Antenna Measurements for Cellular Phone Certification Ahlia M. Tillman, John Rzasa, Bandar Hakim, Quirino Balzano, and Christopher C. Davis.
Effect of Thin Coatings on Surface Plasmon-Enhanced Infrared Spectroscopy using Ni Mesh Microarrays Kenneth R. Rodriguez, Shannon Teeters- Kennedy, Hong.
What Can Spectroscopy Tell Us?. Atom or Molecular Fingerprints Every atom or molecule exists in its own unique energy state. This energy state is dependent.
1 EEE 431 Computational Methods in Electrodynamics Lecture 9 By Dr. Rasime Uyguroglu
The Propagation of Electromagnetic Wave in Atmospheric Pressure Plasma Zhonghe Jiang XiWei Hu Shu Zhang Minghai Liu Huazhong University of Science & Technology.
The propagation of a microwave in an atmospheric pressure plasma layer: 1 and 2 dimensional numerical solutions Conference on Computation Physics-2006.
What is light? Light can act either like a wave or like a particle Particles of light are called photons.
Computational Nanophotonics Stephen K. Gray Chemistry Division Argonne National Laboratory Argonne, IL Tel:
Radiation (Ch 12 YAC) Thermal energy is emitted by matter as a result of vibrational and rotational motion of molecules, atoms and electrons. The energy.
Ch 10 Pages ; Lecture 24 – Introduction to Spectroscopy.
Modelling and Simulation of Passive Optical Devices João Geraldo P. T. dos Reis and Henrique J. A. da Silva Introduction Integrated Optics is a field of.
Nanolithography Using Bow-tie Nanoantennas Rouin Farshchi EE235 4/18/07 Sundaramurthy et. al., Nano Letters, (2006)
Andrew van Bommel February 28th, 2006
Microphononic Crystals B. Ash, G. R. Nash, P. Vukusic ex.ac.uk/BenAsh Abstract. This project investigates.
Outline 1.Motivation1.Motivation 1.Theories1.Theories 2.Results and discussions2.Results and discussions 3.Future work3.Future work.
Controlled fabrication and optical properties of one-dimensional SiGe nanostructures Zilong Wu, Hui Lei, Zhenyang Zhong Introduction Controlled Si and.
High performance optical absorber based on a plasmonic metamaterial 岑剡.
Date of download: 5/30/2016 Copyright © 2016 SPIE. All rights reserved. Optical configuration. The function of a BFP imaging lens, added externally to.
Raman spectroscopy.
Damian Luna Yetziel Sandoval – Alberto Gonzales – 80546
Date of download: 9/17/2016 Copyright © 2016 SPIE. All rights reserved. The implementation of the angular spectrum of plane waves method in the finite.
Date of download: 9/18/2016 Copyright © 2016 SPIE. All rights reserved. (a) SPW excitation at the tapered fiber tip. The fiber tip is coated with a thin.
Electromagnetic interactions in a pair of coupled split ring resonators S. Seetharaman, I. R. Hooper, W. L. Barnes Department of Physics & Astronomy, University.
Figure 5Simulation of the coupled plasmonic nanopores
Experimental results II Experimental results I
Agenda for today Today we will do another tutorial example together to continue introduction to Lumerical FDTD software. Task #1: Tune the resonance frequency.
Ultra broadband plasmonic absorbers for terahertz waves
Plasmonic waveguide filters with nanodisk resonators
ELEC 401 MICROWAVE ELECTRONICS Lecture 3
Electrical Engineering Department, SGSITS, Indore, INDIA
ELEC 401 MICROWAVE ELECTRONICS Lecture 3
Radiation Thermal energy emitted by matter as a result of vibrational and rotational movements of molecules, atoms and electrons. The energy is transported.
Introduction and Principle of IR Spectrophotometry
Volume 3, Issue 4, Pages (October 2017)
Homework: Notes: Autotrophs and Heterotrophs
Investigation of the Effect of Ligands on Metal-to-Ligand Charge Transfer Transitions using d10-complexes of Group 11 Elements Evangelos Rossis, Roy Planalp,
OPTICAL PROPERTIES K L University Department of Physics.
Volume 8, Pages (October 2018)
Optimal-Enhanced Solar Cell Ultra-thinning with Broadband Nanophotonic Light Capture  Manuel J. Mendes, Sirazul Haque, Olalla Sanchez-Sobrado, Andreia.
Light and the Electromagnetic Spectrum
Optimal-Enhanced Solar Cell Ultra-thinning with Broadband Nanophotonic Light Capture  Manuel J. Mendes, Sirazul Haque, Olalla Sanchez-Sobrado, Andreia.
Cutnell/Johnson Physics 7th edition
Radiation Thermal energy emitted by matter as a result of vibrational and rotational movements of molecules, atoms and electrons. The energy is transported.
Modal profiles at the SPR wavelengths for different SF values
Finite element Analysis study of P-U based Acoustic Vector Sensor for Underwater Application in COMSOL Bipin Kumar1, Arun Kumar1, Rajendar Bahl1 1Centre.
Volume 105, Issue 3, Pages (August 2013)
化工群英文示例 沙鹿高工 簡佩琳.
Volume 3, Issue 4, Pages (October 2017)
Elementary Quantum Mechanics
Bend loss induced in BIF for 10 mm bend diameter at 1550 nm wavelength
Toward broadband, dynamic structuring of a complex plasmonic field
Presentation transcript:

Plasmonics of Normal and Inverted Core-Shell Nanostructures Sudip Kumar Pal1, Sujit Kumar Ghosh1 1. Department of Chemistry, Assam University, Silchar-788011, India Introduction: Our work focuses on the synthesis of normal and inverted gold-silver core-shell nanostructures following the method of Pal group. The normal and inverted core-shell nanostructures so formed have been characterized by transmission electron microscopic and UV-visible spectroscopic techniques. We have simulated the electric field generated using finite difference time domain (FDTD) and discrete dipole approximation (DDA) method and validated the experimental results with theoretical calculations. Figure 4. Absorption spectra of different thickness of Aucore-Agshell A two dimensional layered motif has been considered to model the plane wave interaction with the hybrid layered spheroid morphology. The electromagnetic coupling is shown through the surface plot as given in Figure 5. b c d a a = 10 µL, 10 mM HAuCl4 solution b = 20 µL, 10 mM HAuCl4 solution c = 30 µL , 10 mM HAuCl4 solution d = 40 µL, 10 mM HAuCl4 solution a = 10 µL , 10 mM AgNO3 solution b = 20 µL, 10 mM AgNO3 solution c = 30 µL, 10 mM AgNO3 solution d = 40 µL, 10 mM AgNO3 solution Figure 5. FEM of Aucore-Agshell FEM Simulation of Normal and Inverted Core Shell of Different Thickness: Finite difference time domain (FDTD) calculations of the nanostructures signify their respective monopolar and multipolar nature. Figure 6 shows the results obtained for a plane wave interacting with a fixed size core with different shell thickness. Figure 1. Synthesis of normal and inverted core-shell nanostructures Computational Methods: Electromagnetic field generated on the surface due to the light-matter interaction has been modeled with the RF module, setting corresponding incident wavelength as recorded from the absorption spectra. Figure 6. FDTD simulation of core-shell of different shell thickness Results: As the amount of silver nitrate solution added increases, the peak of silver become more prominent with increasing thickness for Aucore-Agshell, but reverse phenomenon is observed for Agcore-Aushell nanostructures. DDA Simulation of Normal and Inverted Core- Shell of Different Thickness: The extinction profile shows that as the thickness increases, the peak shifted to the higher wavelength for both normal and inverted core-shell nanostructures. Figure 3. Absorption spectra of different shell thickness of Aucore-Agshell Figure 4. Absorption spectra of different shell thickness of Agcore-Aushell Figure 7. DDA simulation of different shell thickness of Aucore-Agshell Figure 8. DDA simulation of different shell thickness of Agcore-Aushell Conclusions: We have successfully introduced FEM and DDA simulations to account for different thickness of normal and inverted core-shell structures. Transmission Electron Micrographs of Normal & Inverted Core-Shell Nanostructures: Core-shell structure shows a more dense interior core of gold surrounded by a thinner shell and inverted core-shell structure shows a less dense interior core of silver surrounded by a thicker shell. References: Ghosh, S.K.; Pal, T. Chem. Rev. 2007, 107, 4797.