Literature DB >> 25739465

A classical treatment of optical tunneling in plasmonic gaps: extending the quantum corrected model to practical situations.

Rubén Esteban1, Asier Zugarramurdi, Pu Zhang, Peter Nordlander, Francisco J García-Vidal, Andrei G Borisov, Javier Aizpurua.   

Abstract

The optical response of plasmonic nanogaps is challenging to address when the separation between the two nanoparticles forming the gap is reduced to a few nanometers or even subnanometer distances. We have compared results of the plasmon response within different levels of approximation, and identified a classical local regime, a nonlocal regime and a quantum regime of interaction. For separations of a few Ångstroms, in the quantum regime, optical tunneling can occur, strongly modifying the optics of the nanogap. We have considered a classical effective model, so called Quantum Corrected Model (QCM), that has been introduced to correctly describe the main features of optical transport in plasmonic nanogaps. The basics of this model are explained in detail, and its implementation is extended to include nonlocal effects and address practical situations involving different materials and temperatures of operation.

Year:  2015        PMID: 25739465     DOI: 10.1039/c4fd00196f

Source DB:  PubMed          Journal:  Faraday Discuss        ISSN: 1359-6640            Impact factor:   4.008


  12 in total

1.  Quantum Plasmonics: Optical Monitoring of DNA-Mediated Charge Transfer in Plasmon Rulers.

Authors:  Sarah Lerch; Björn M Reinhard
Journal:  Adv Mater       Date:  2016-01-20       Impact factor: 30.849

2.  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

3.  Nanoengineering of conductively coupled metallic nanoparticles towards selective resonance modes within the near-infrared regime.

Authors:  Naby Hadilou; Somayeh Souri; H A Navid; Rasoul Sadighi Bonabi; Abbas Anvari
Journal:  Sci Rep       Date:  2022-05-12       Impact factor: 4.996

4.  Tracking Optical and Electronic Behaviour of Quantum Contacts in Sub-Nanometre Plasmonic Cavities.

Authors:  A Sanders; R W Bowman; J J Baumberg
Journal:  Sci Rep       Date:  2016-09-09       Impact factor: 4.379

5.  Plasmonic refractive index sensing using strongly coupled metal nanoantennas: nonlocal limitations.

Authors:  Hancong Wang
Journal:  Sci Rep       Date:  2018-06-25       Impact factor: 4.379

6.  Quantum Effects In Imaging Nano-Structures Using Photon-Induced Near-Field Electron Microscopy.

Authors:  Naglaa Etman; Afaf M A Said; Khaled S R Atia; Reem Sultan; Mohamed Farhat O Hameed; Muhamed Amin; S S A Obayya
Journal:  Sci Rep       Date:  2019-04-16       Impact factor: 4.379

7.  Observation of Wavelength-Dependent Quantum Plasmon Tunneling with Varying the Thickness of Graphene Spacer.

Authors:  Khang June Lee; Shinho Kim; Woonggi Hong; Hamin Park; Min Seok Jang; Kyoungsik Yu; Sung-Yool Choi
Journal:  Sci Rep       Date:  2019-02-04       Impact factor: 4.379

8.  From tunable core-shell nanoparticles to plasmonic drawbridges: Active control of nanoparticle optical properties.

Authors:  Chad P Byers; Hui Zhang; Dayne F Swearer; Mustafa Yorulmaz; Benjamin S Hoener; Da Huang; Anneli Hoggard; Wei-Shun Chang; Paul Mulvaney; Emilie Ringe; Naomi J Halas; Peter Nordlander; Stephan Link; Christy F Landes
Journal:  Sci Adv       Date:  2015-12-04       Impact factor: 14.136

Review 9.  Quantum mechanical effects in plasmonic structures with subnanometre gaps.

Authors:  Wenqi Zhu; Ruben Esteban; Andrei G Borisov; Jeremy J Baumberg; Peter Nordlander; Henri J Lezec; Javier Aizpurua; Kenneth B Crozier
Journal:  Nat Commun       Date:  2016-06-03       Impact factor: 14.919

10.  Active quantum plasmonics.

Authors:  Dana Codruta Marinica; Mario Zapata; Peter Nordlander; Andrey K Kazansky; Pedro M Echenique; Javier Aizpurua; Andrei G Borisov
Journal:  Sci Adv       Date:  2015-12-18       Impact factor: 14.136

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