Literature DB >> 22569369

Bridging quantum and classical plasmonics with a quantum-corrected model.

Ruben Esteban1, Andrei G Borisov, Peter Nordlander, Javier Aizpurua.   

Abstract

Electromagnetic coupling between plasmonic resonances in metallic nanoparticles allows for engineering of the optical response and generation of strong localized near-fields. Classical electrodynamics fails to describe this coupling across sub-nanometer gaps, where quantum effects become important owing to non-local screening and the spill-out of electrons. However, full quantum simulations are not presently feasible for realistically sized systems. Here we present a novel approach, the quantum-corrected model (QCM), that incorporates quantum-mechanical effects within a classical electrodynamic framework. The QCM approach models the junction between adjacent nanoparticles by means of a local dielectric response that includes electron tunnelling and tunnelling resistivity at the gap and can be integrated within a classical electrodynamical description of large and complex structures. The QCM predicts optical properties in excellent agreement with fully quantum mechanical calculations for small interacting systems, opening a new venue for addressing quantum effects in realistic plasmonic systems.

Year:  2012        PMID: 22569369     DOI: 10.1038/ncomms1806

Source DB:  PubMed          Journal:  Nat Commun        ISSN: 2041-1723            Impact factor:   14.919


  25 in total

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Authors:  J Aizpurua; G Hoffmann; S P Apell; R Berndt
Journal:  Phys Rev Lett       Date:  2002-09-24       Impact factor: 9.161

2.  Evolution of the optical properties of alkali-metal microclusters towards the bulk: The matrix random-phase-approximation description.

Authors: 
Journal:  Phys Rev B Condens Matter       Date:  1993-04-15

3.  Plasmonic light-harvesting devices over the whole visible spectrum.

Authors:  Alexandre Aubry; Dang Yuan Lei; Antonio I Fernández-Domínguez; Yannick Sonnefraud; Stefan A Maier; J B Pendry
Journal:  Nano Lett       Date:  2010-07-14       Impact factor: 11.189

4.  Nonlinear optical response from arrays of Au bowtie nanoantennas.

Authors:  Kaspar D Ko; Anil Kumar; Kin Hung Fung; Raghu Ambekar; Gang Logan Liu; Nicholas X Fang; Kimani C Toussaint
Journal:  Nano Lett       Date:  2010-11-24       Impact factor: 11.189

5.  Resonant optical antennas.

Authors:  P Mühlschlegel; H-J Eisler; O J F Martin; B Hecht; D W Pohl
Journal:  Science       Date:  2005-06-10       Impact factor: 47.728

6.  High-harmonic generation by resonant plasmon field enhancement.

Authors:  Seungchul Kim; Jonghan Jin; Young-Jin Kim; In-Yong Park; Yunseok Kim; Seung-Woo Kim
Journal:  Nature       Date:  2008-06-05       Impact factor: 49.962

7.  Quantum description of the plasmon resonances of a nanoparticle dimer.

Authors:  Jorge Zuloaga; Emil Prodan; Peter Nordlander
Journal:  Nano Lett       Date:  2009-02       Impact factor: 11.189

8.  Optical scattering resonances of single and coupled dimer plasmonic nanoantennas.

Authors:  O L Muskens; V Giannini; J A Sánchez-Gil; J Gómez Rivas
Journal:  Opt Express       Date:  2007-12-24       Impact factor: 3.894

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

Authors:  Isabel Romero; Javier Aizpurua; Garnett W Bryant; F Javier García De Abajo
Journal:  Opt Express       Date:  2006-10-16       Impact factor: 3.894

10.  Optical rectification and field enhancement in a plasmonic nanogap.

Authors:  Daniel R Ward; Falco Hüser; Fabian Pauly; Juan Carlos Cuevas; Douglas Natelson
Journal:  Nat Nanotechnol       Date:  2010-09-19       Impact factor: 39.213

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  88 in total

1.  van der Waals interactions at the nanoscale: the effects of nonlocality.

Authors:  Yu Luo; Rongkuo Zhao; John B Pendry
Journal:  Proc Natl Acad Sci U S A       Date:  2014-12-02       Impact factor: 11.205

2.  Phase imaging of transition from classical to quantum plasmonic couplings between a metal nanoparticle and a metal surface.

Authors:  Hui Wang; Hui Yu; Yan Wang; Xiaonan Shan; Hong-Yuan Chen; Nongjian Tao
Journal:  Proc Natl Acad Sci U S A       Date:  2020-07-14       Impact factor: 11.205

3.  Detection of electron tunneling across plasmonic nanoparticle-film junctions using nitrile vibrations.

Authors:  Hao Wang; Kun Yao; John A Parkhill; Zachary D Schultz
Journal:  Phys Chem Chem Phys       Date:  2017-02-22       Impact factor: 3.676

4.  Converting Plasmonic Light Scattering to Confined Light Absorption and Creating Plexcitons by Coupling a Gold Nano-pyramid Array onto a Silica-Gold Film.

Authors:  Peng Zheng; Sujan Kasani; Nianqiang Wu
Journal:  Nanoscale Horiz       Date:  2018-11-29       Impact factor: 10.989

5.  Nanophotonics. Plasmon quantum limit exposed.

Authors:  Niek F van Hulst
Journal:  Nat Nanotechnol       Date:  2012-11-25       Impact factor: 39.213

6.  Revealing the quantum regime in tunnelling plasmonics.

Authors:  Kevin J Savage; Matthew M Hawkeye; Rubén Esteban; Andrei G Borisov; Javier Aizpurua; Jeremy J Baumberg
Journal:  Nature       Date:  2012-11-07       Impact factor: 49.962

7.  A subwavelength plasmonic metamolecule exhibiting magnetic-based optical Fano resonance.

Authors:  Farbod Shafiei; Francesco Monticone; Khai Q Le; Xing-Xiang Liu; Thomas Hartsfield; Andrea Alù; Xiaoqin Li
Journal:  Nat Nanotechnol       Date:  2013-01-27       Impact factor: 39.213

8.  Surface plasmon resonances of arbitrarily shaped nanometallic structures in the small-screening-length limit.

Authors:  Ory Schnitzer; Vincenzo Giannini; Stefan A Maier; Richard V Craster
Journal:  Proc Math Phys Eng Sci       Date:  2016-07       Impact factor: 2.704

9.  Spectral signatures of charge transfer in assemblies of molecularly-linked plasmonic nanoparticles.

Authors:  Sarah Lerch; Björn M Reinhard
Journal:  Int J Mod Phys B       Date:  2017-04-13       Impact factor: 1.219

10.  Selective TERS detection and imaging through controlled plasmonics.

Authors:  Hao Wang; Stacey L Carrier; Sheldon Park; Zachary D Schultz
Journal:  Faraday Discuss       Date:  2015       Impact factor: 4.008

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