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Materials Science

D-Index
50
Citations
14537
World Ranking
10078
National Ranking
2419

Research.com Recognitions

  • 2006 - Fellow of American Physical Society (APS) Citation For seminal contributions to the theory of semiconductor quantum dots and other complex quantum nanostructures and to nanooptics

Overview

Garnett W. Bryant is affiliated with the National Institute of Standards and Technology in the United States. Their research primarily encompasses the fields of Physics and Astronomy as well as Materials Science, with a notable focus on subfields including Atomic and Molecular Physics and Optics, Electrical and Electronic Engineering, Materials Chemistry, Condensed Matter Physics, and Electronic, Optical, and Magnetic Materials.

The scientist's work covers a variety of main topics, highlighted by investigations into Quantum and electron transport phenomena, Topological Materials and Phenomena, Semiconductor Quantum Structures and Devices, Physics of Superconductivity and Magnetism, Graphene research and applications, Magnetic properties of thin films, and Plasmonic and Surface Plasmon Research.

Recent scientific publications by Garnett W. Bryant include:

  • "Experimental realization of an extended Fermi-Hubbard model using a 2D lattice of dopant-based quantum dots," 2022, Nature Communications
  • "Light and microwave driven spin pumping across FeGaB-BiSb interface," 2021, Physical Review Materials
  • "Energy-Based Plasmonicity Index to Characterize Optical Resonances in Nanostructures," 2020, The Journal of Physical Chemistry C
  • "Strong coupling between a topological insulator and a III-V heterostructure at terahertz frequency," 2022, Physical Review Materials
  • "Revising quantum optical phenomena in adatoms coupled to graphene nanoantennas," 2022, Nanophotonics

Frequent collaborators with whom Garnett W. Bryant has co-authored multiple works include:

  • Anderson Janotti
  • Dai Q. Ho
  • D. Quang To
  • Joshua M. O. Zide
  • Matthew F. Doty

The scientist's research has been published repeatedly in key venues such as arXiv (Cornell University), Physical Review B, Physical Review Materials, UNC Libraries, and The Journal of Physical Chemistry C. These publication venues reflect the interdisciplinary nature of their work and its relevance across physics and materials science communities.

Garnett W. Bryant was recognized as a Fellow of the American Physical Society (APS) in 2006, cited specifically for contributions related to the theory of semiconductor quantum dots, complex quantum nanostructures, and nanooptics.

Best Publications

  • Optical properties of gold nanorings

    Javier Aizpurua;P Hanarp;D S. Sutherland;M Kall

  • Plasmons in nearly touching metallic nanoparticles: singular response in the limit of touching dimers

    Isabel Romero;Javier Aizpurua;Garnett W. Bryant;F. Javier Garcia de Abajo

  • Plasmons in nearly touching metallic nanoparticles: singular response in the limit of touching dimers.

    Isabel Romero;Javier Aizpurua;Garnett W Bryant;F Javier García De Abajo

  • Metal-nanoparticle plasmonics

    Matthew Pelton;Javier Aizpurua;Garnett W. Bryant

  • Optical properties of coupled metallic nanorods for field-enhanced spectroscopy

    J. Aizpurua;J. Aizpurua;Garnett W. Bryant;Lee J. Richter;F. J. García de Abajo;F. J. García de Abajo

  • Semiconductor-Metal Nanoparticle Molecules: Hybrid Excitons and the Nonlinear Fano Effect

    Wei Zhang;Alexander O. Govorov;Garnett W. Bryant

  • Exciton-plasmon interaction and hybrid excitons in semiconductor-metal nanoparticle assemblies

    Alexander O. Govorov;Garnett W. Bryant;Wei Zhang;Timur Skeini

  • Mapping the Plasmon Resonances of Metallic Nanoantennas

    Garnett W. Bryant;F. Javier Garcia De Abajo;Javier Aizpurua

  • Electronic structure of ultrasmall quantum-well boxes.

    Garnett W. Bryant

  • Excitons in quantum boxes: Correlation effects and quantum confinement.

    Garnett W. Bryant

  • Optical Response of Strongly Coupled Quantum Dot-Metal Nanoparticle Systems: Double Peaked Fano Structure and Bistability

    Ryan Artuso;Garnett Bryant

  • Optical response of strongly coupled quantum dot-metal nanoparticle systems: double peaked Fano structure and bistability.

    Ryan D. Artuso;Garnett W. Bryant

  • Introduction to Metal-Nanoparticle Plasmonics

    Matthew Pelton;Garnett W Bryant

  • Strongly coupled quantum dot-metal nanoparticle systems: Exciton-induced transparency, discontinuous response, and suppression as driven quantum oscillator effects

    Ryan D. Artuso;Garnett W. Bryant

  • Size-dependent electronic level structure of InAs nanocrystal quantum dots: Test of multiband effective mass theory

    U. Banin;C. J. Lee;A. A. Guzelian;A. V. Kadavanich

  • Hydrogenic impurity states in quantum-well wires

    Garnett W. Bryant

  • Hydrogenic impurity states in quantum-well wires: Shape effects.

    Garnett W. Bryant

  • Plasmonic properties of metallic nanoparticles: the effects of size quantization.

    Emily Townsend;Garnett W Bryant

  • Electron-hole correlations in semiconductor quantum dots with tight-binding wave functions

    Seungwon Lee;Lars Jönsson;John W. Wilkins;Garnett W. Bryant

  • Formation of quantum-dot quantum-well heteronanostructures with large lattice mismatch: ZnS/CdS/ZnS

    Reginald B. Little;Mostafa A. El-Sayed;Garnett W. Bryant;Susan Burke

  • Exciton–Plasmon Interactions in Quantum Dot–Gold Nanoparticle Structures

    Eyal Cohen-Hoshen;Garnett W. Bryant;Iddo Pinkas;Joseph Sperling

  • Bioconjugated Ag nanoparticles and CdTe nanowires: metamaterials with field-enhanced light absorption.

    Jaebeom Lee;Tanveer Javed;Timur Skeini;Alexander O. Govorov

  • Plasmonic Control of the Shape of the Raman Spectrum of a Single Molecule in a Silver Nanoparticle Dimer

    T. Dadosh;J. Sperling;G. W. Bryant;R. Breslow

  • The Morphology of Narrow Gaps Modifies the Plasmonic Response

    Rubén Esteban;Garikoitz Aguirregabiria;Andrey G. Borisov;Yumin M. Wang

  • First-principles calculations of structural, electronic, vibrational, and magnetic properties of C60 and C48N12: A comparative study

    Rui Hua Xie;Garnett W. Bryant;Lasse Jensen;Jijun Zhao

Frequent Co-Authors

Javier Aizpurua
Javier Aizpurua University of the Basque Country
Vedene H. Smith
Vedene H. Smith Queen's University
Andrés Ayuela
Andrés Ayuela Spanish National Research Council
Paul S. Julienne
Paul S. Julienne University of Maryland, College Park
Lasse Jensen
Lasse Jensen Pennsylvania State University
Julia W. P. Hsu
Julia W. P. Hsu The University of Texas at Dallas
Alexander O. Govorov
Alexander O. Govorov Ohio University
Sai T. Chu
Sai T. Chu City University of Hong Kong
Lee J. Richter
Lee J. Richter National Institute of Standards and Technology
Gerhard Klimeck
Gerhard Klimeck Purdue University West Lafayette

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