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Photocharging and Band Gap Narrowing Effects on the Performance of Plasmonic  Photoelectrodes in Dye-Sensitized Solar Cells | ACS Applied Materials &  Interfaces
Photocharging and Band Gap Narrowing Effects on the Performance of Plasmonic Photoelectrodes in Dye-Sensitized Solar Cells | ACS Applied Materials & Interfaces

Band structure engineered layered metals for low-loss plasmonics | Nature  Communications
Band structure engineered layered metals for low-loss plasmonics | Nature Communications

Origins of Contrast | What is CL?
Origins of Contrast | What is CL?

Plasmonic gold nanostructures for biosensing and bioimaging | SpringerLink
Plasmonic gold nanostructures for biosensing and bioimaging | SpringerLink

Plasmonic hot-electron photodetection with quasi-bound states in the  continuum and guided resonances
Plasmonic hot-electron photodetection with quasi-bound states in the continuum and guided resonances

A) Localized surface plasmon for a spherical gold nanoparticle. 42... |  Download Scientific Diagram
A) Localized surface plasmon for a spherical gold nanoparticle. 42... | Download Scientific Diagram

Plasmonic nanoparticle-semiconductor composites for efficient solar water  splitting - Journal of Materials Chemistry A (RSC Publishing)  DOI:10.1039/C6TA06405A
Plasmonic nanoparticle-semiconductor composites for efficient solar water splitting - Journal of Materials Chemistry A (RSC Publishing) DOI:10.1039/C6TA06405A

Strong mode coupling-enabled hybrid photon-plasmon laser with a  microfiber-coupled nanorod | Science Advances
Strong mode coupling-enabled hybrid photon-plasmon laser with a microfiber-coupled nanorod | Science Advances

Plasmonic Effect of Metal Nanoparticles Deposited on Wide-Band Gap Metal  Oxide Nanowire Substrate
Plasmonic Effect of Metal Nanoparticles Deposited on Wide-Band Gap Metal Oxide Nanowire Substrate

Rational Design of Plasmonic Metal Nanostructures for Solar Energy  Conversion | CCS Chem
Rational Design of Plasmonic Metal Nanostructures for Solar Energy Conversion | CCS Chem

Frontiers | Harnessing Plasmon-Induced Hot Carriers at the Interfaces With  Ferroelectrics
Frontiers | Harnessing Plasmon-Induced Hot Carriers at the Interfaces With Ferroelectrics

Band Alignments, Band Gap, Core Levels, and Valence Band States in Cu3BiS3  for Photovoltaics | ACS Applied Materials & Interfaces
Band Alignments, Band Gap, Core Levels, and Valence Band States in Cu3BiS3 for Photovoltaics | ACS Applied Materials & Interfaces

Hot” in Plasmonics: Temperature‐Related Concepts and Applications of Metal  Nanostructures - Kuppe - 2020 - Advanced Optical Materials - Wiley Online  Library
Hot” in Plasmonics: Temperature‐Related Concepts and Applications of Metal Nanostructures - Kuppe - 2020 - Advanced Optical Materials - Wiley Online Library

Characterization of the surface plasmon polariton band gap in an Ag/SiO2/Ag  T-shaped periodical structure
Characterization of the surface plasmon polariton band gap in an Ag/SiO2/Ag T-shaped periodical structure

Theoretical calculations for localized surface plasmon resonance effects of  Cu/TiO2 nanosphere: Generation, modulation, and application in  photocatalysis - ScienceDirect
Theoretical calculations for localized surface plasmon resonance effects of Cu/TiO2 nanosphere: Generation, modulation, and application in photocatalysis - ScienceDirect

Waveguiding in Surface Plasmon Polariton Band Gap ... - DTU Orbit
Waveguiding in Surface Plasmon Polariton Band Gap ... - DTU Orbit

a) Energy band structure of symmetric two-stream plasmon excitations.... |  Download Scientific Diagram
a) Energy band structure of symmetric two-stream plasmon excitations.... | Download Scientific Diagram

Posters and Short Descriptions > Research > ibs
Posters and Short Descriptions > Research > ibs

Sensors | Free Full-Text | Highly Sensitive Graphene-Au Coated Plasmon  Resonance PCF Sensor
Sensors | Free Full-Text | Highly Sensitive Graphene-Au Coated Plasmon Resonance PCF Sensor

Plasmon-modulated photoluminescence from gold nanostructures and its  dependence on plasmon resonance, excitation energy, and band structure
Plasmon-modulated photoluminescence from gold nanostructures and its dependence on plasmon resonance, excitation energy, and band structure