Literature DB >> 20852641

Optical rectification and field enhancement in a plasmonic nanogap.

Daniel R Ward1, Falco Hüser, Fabian Pauly, Juan Carlos Cuevas, Douglas Natelson.   

Abstract

Metal nanostructures act as powerful optical antennas because collective modes of the electron fluid in the metal are excited when light strikes the surface of the nanostructure. These excitations, known as plasmons, can have evanescent electromagnetic fields that are orders of magnitude larger than the incident electromagnetic field. The largest field enhancements often occur in nanogaps between plasmonically active nanostructures, but it is extremely challenging to measure the fields in such gaps directly. These enhanced fields have applications in surface-enhanced spectroscopies, nonlinear optics and nanophotonics. Here we show that nonlinear tunnelling conduction between gold electrodes separated by a subnanometre gap leads to optical rectification, producing a d.c. photocurrent when the gap is illuminated. Comparing this photocurrent with low-frequency conduction measurements, we determine the optical frequency voltage across the tunnelling region of the nanogap, and also the enhancement of the electric field in the tunnelling region, as a function of gap size. The measured field enhancements exceed 1,000, consistent with estimates from surface-enhanced Raman measurements. Our results highlight the need for more realistic theoretical approaches that are able to model the electromagnetic response of metal nanostructures on scales ranging from the free-space wavelength, λ, down to ∼λ/1,000, and for experiments with new materials, different wavelengths and different incident polarizations.

Entities:  

Year:  2010        PMID: 20852641     DOI: 10.1038/nnano.2010.176

Source DB:  PubMed          Journal:  Nat Nanotechnol        ISSN: 1748-3387            Impact factor:   39.213


  17 in total

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2.  Atomic-scale rectification at microwave frequency.

Authors:  X W Tu; J H Lee; W Ho
Journal:  J Chem Phys       Date:  2006-01-14       Impact factor: 3.488

3.  Optical frequency mixing at coupled gold nanoparticles.

Authors:  Matthias Danckwerts; Lukas Novotny
Journal:  Phys Rev Lett       Date:  2007-01-10       Impact factor: 9.161

4.  Influence of laser light on electronic transport through atomic-size contacts.

Authors:  D C Guhr; D Rettinger; J Boneberg; A Erbe; P Leiderer; E Scheer
Journal:  Phys Rev Lett       Date:  2007-08-21       Impact factor: 9.161

5.  Generation of single optical plasmons in metallic nanowires coupled to quantum dots.

Authors:  A V Akimov; A Mukherjee; C L Yu; D E Chang; A S Zibrov; P R Hemmer; H Park; M D Lukin
Journal:  Nature       Date:  2007-11-15       Impact factor: 49.962

6.  Measurement of electronic transport through 1G0 gold contacts under laser irradiation.

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

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Journal:  Nano Lett       Date:  2009-02       Impact factor: 11.189

8.  PlasMOStor: a metal-oxide-Si field effect plasmonic modulator.

Authors:  Jennifer A Dionne; Kenneth Diest; Luke A Sweatlock; Harry A Atwater
Journal:  Nano Lett       Date:  2009-02       Impact factor: 11.189

9.  Demonstration of a spaser-based nanolaser.

Authors:  M A Noginov; G Zhu; A M Belgrave; R Bakker; V M Shalaev; E E Narimanov; S Stout; E Herz; T Suteewong; U Wiesner
Journal:  Nature       Date:  2009-08-16       Impact factor: 49.962

10.  Plasmon lasers at deep subwavelength scale.

Authors:  Rupert F Oulton; Volker J Sorger; Thomas Zentgraf; Ren-Min Ma; Christopher Gladden; Lun Dai; Guy Bartal; Xiang Zhang
Journal:  Nature       Date:  2009-08-30       Impact factor: 49.962

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  33 in total

1.  Self-limited plasmonic welding of silver nanowire junctions.

Authors:  Erik C Garnett; Wenshan Cai; Judy J Cha; Fakhruddin Mahmood; Stephen T Connor; M Greyson Christoforo; Yi Cui; Michael D McGehee; Mark L Brongersma
Journal:  Nat Mater       Date:  2012-02-05       Impact factor: 43.841

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

Authors:  Ruben Esteban; Andrei G Borisov; Peter Nordlander; Javier Aizpurua
Journal:  Nat Commun       Date:  2012-05-08       Impact factor: 14.919

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.  A sub-1-volt nanoelectromechanical switching device.

Authors:  Jeong Oen Lee; Yong-Ha Song; Min-Wu Kim; Min-Ho Kang; Jae-Sub Oh; Hyun-Ho Yang; Jun-Bo Yoon
Journal:  Nat Nanotechnol       Date:  2012-11-25       Impact factor: 39.213

5.  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

6.  Harvesting renewable energy from Earth's mid-infrared emissions.

Authors:  Steven J Byrnes; Romain Blanchard; Federico Capasso
Journal:  Proc Natl Acad Sci U S A       Date:  2014-03-03       Impact factor: 11.205

7.  Experimental correlation of electric fields and Raman signals in SERS and TERS.

Authors:  Zachary D Schultz; Hao Wang; Daniel T Kwasnieski; James M Marr
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2015-08-09

8.  From SERS to TERS and Beyond: Molecules as Probes of Nanoscopic Optical Fields.

Authors:  Patrick Z El-Khoury; Zachary D Schultz
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2020-12-15       Impact factor: 4.126

9.  Non-plasmonic nanoantennas for surface enhanced spectroscopies with ultra-low heat conversion.

Authors:  Martín Caldarola; Pablo Albella; Emiliano Cortés; Mohsen Rahmani; Tyler Roschuk; Gustavo Grinblat; Rupert F Oulton; Andrea V Bragas; Stefan A Maier
Journal:  Nat Commun       Date:  2015-08-04       Impact factor: 14.919

10.  Alkyl-Nitrile Adlayers as Probes of Plasmonically Induced Electric Fields.

Authors:  Daniel T Kwasnieski; Hao Wang; Zachary D Schultz
Journal:  Chem Sci       Date:  2015-08-01       Impact factor: 9.825

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