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

Author:

Esteban Rubén12342,Zugarramurdi Asier56789,Zhang Pu1011121314,Nordlander Peter1516171819,García-Vidal Francisco J.4231420,Borisov Andrei G.42356,Aizpurua Javier12342

Affiliation:

1. Materials Physics Center CSIC-UPV/EHU

2. Donostia-San Sebastián

3. Spain

4. Donostia International Physics Center DIPC

5. Institut des Sciences Moléculaires d'Orsay

6. CNRS-Université Paris-Sud

7. France

8. COMP

9. Department of Applied Physics

10. Department of Photonics Engineering

11. Technical University of Denmark

12. Lyngby

13. Denmark

14. Departamento de Física Teórica de la Materia Condensada and Condensed Matter Physics Center (IFIMAC)

15. Department of Electrical and Computer Engineering

16. Laboratory of Nanophotonics

17. Rice University

18. Houston Texas 77005

19. USA

20. Universidad Autónoma de Madrid

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.

Funder

Agence Nationale de la Recherche

Publisher

Royal Society of Chemistry (RSC)

Subject

Physical and Theoretical Chemistry

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