A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions

Mechanically controllable break junctions are one suitable approach to generate atomic point contacts and ultrasmall and controllable gaps between two metal contacts. For constant bias voltages, the tunneling current can be used as a ruler to evaluate the distance between the contacts in the sub-1-n...

Full description

Bibliographic Details
Main Authors: Laible Florian, Braun Kai, Hauler Otto, Eberle Martin, Kern Dieter P., Meixner Alfred J., Fleischer Monika
Format: Article
Language:English
Published: De Gruyter 2020-05-01
Series:Nanophotonics
Subjects:
Online Access:http://www.degruyter.com/view/j/nanoph.2020.9.issue-6/nanoph-2019-0472/nanoph-2019-0472.xml?format=INT
id doaj-0e4221a73fca40ae8ef82dc2a8bae470
record_format Article
spelling doaj-0e4221a73fca40ae8ef82dc2a8bae4702021-05-02T19:17:59ZengDe GruyterNanophotonics2192-86142020-05-01961391140010.1515/nanoph-2019-0472nanoph-2019-0472A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctionsLaible Florian0Braun Kai1Hauler OttoEberle MartinKern Dieter P.2Meixner Alfred J.Fleischer Monika3Institute for Applied Physics, University of Tübingen, Auf der Morgenstelle 10, 72076 Tübingen, GermanyInstitute of Physical and Theoretical Chemistry, University of Tübingen, Auf der Morgenstelle 18, 72076 Tübingen, GermanyInstitute for Applied Physics, University of Tübingen, Auf der Morgenstelle 10, 72076 Tübingen, GermanyInstitute for Applied Physics, University of Tübingen, Auf der Morgenstelle 10, 72076 Tübingen, GermanyMechanically controllable break junctions are one suitable approach to generate atomic point contacts and ultrasmall and controllable gaps between two metal contacts. For constant bias voltages, the tunneling current can be used as a ruler to evaluate the distance between the contacts in the sub-1-nm regime and with sub-Å precision. This ruler can be used to measure the distance between two plasmonic nanostructures located at the designated breaking point of the break junction. In this work, an experimental setup together with suitable nanofabricated break junctions is developed that enables us to perform simultaneous gap-dependent optical and electrical characterization of coupled plasmonic particles, more specifically bowtie antennas in the highly interesting gap range from few nanometers down to zero gap width. The plasmonic break junction experiment is performed in the focus of a confocal microscope. Confocal scanning images and current measurements are simultaneously recorded and exhibit an increased current when the laser is focused in the proximity of the junction. This setup offers a flexible platform for further correlated optoelectronic investigations of coupled antennas or junctions bridged by nanomaterials.http://www.degruyter.com/view/j/nanoph.2020.9.issue-6/nanoph-2019-0472/nanoph-2019-0472.xml?format=INTplasmonic nanoantennasmechanically controllable break junctionsoptoelectronicsultranarrow gaps
collection DOAJ
language English
format Article
sources DOAJ
author Laible Florian
Braun Kai
Hauler Otto
Eberle Martin
Kern Dieter P.
Meixner Alfred J.
Fleischer Monika
spellingShingle Laible Florian
Braun Kai
Hauler Otto
Eberle Martin
Kern Dieter P.
Meixner Alfred J.
Fleischer Monika
A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions
Nanophotonics
plasmonic nanoantennas
mechanically controllable break junctions
optoelectronics
ultranarrow gaps
author_facet Laible Florian
Braun Kai
Hauler Otto
Eberle Martin
Kern Dieter P.
Meixner Alfred J.
Fleischer Monika
author_sort Laible Florian
title A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions
title_short A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions
title_full A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions
title_fullStr A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions
title_full_unstemmed A flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions
title_sort flexible platform for controlled optical and electrical effects in tailored plasmonic break junctions
publisher De Gruyter
series Nanophotonics
issn 2192-8614
publishDate 2020-05-01
description Mechanically controllable break junctions are one suitable approach to generate atomic point contacts and ultrasmall and controllable gaps between two metal contacts. For constant bias voltages, the tunneling current can be used as a ruler to evaluate the distance between the contacts in the sub-1-nm regime and with sub-Å precision. This ruler can be used to measure the distance between two plasmonic nanostructures located at the designated breaking point of the break junction. In this work, an experimental setup together with suitable nanofabricated break junctions is developed that enables us to perform simultaneous gap-dependent optical and electrical characterization of coupled plasmonic particles, more specifically bowtie antennas in the highly interesting gap range from few nanometers down to zero gap width. The plasmonic break junction experiment is performed in the focus of a confocal microscope. Confocal scanning images and current measurements are simultaneously recorded and exhibit an increased current when the laser is focused in the proximity of the junction. This setup offers a flexible platform for further correlated optoelectronic investigations of coupled antennas or junctions bridged by nanomaterials.
topic plasmonic nanoantennas
mechanically controllable break junctions
optoelectronics
ultranarrow gaps
url http://www.degruyter.com/view/j/nanoph.2020.9.issue-6/nanoph-2019-0472/nanoph-2019-0472.xml?format=INT
work_keys_str_mv AT laibleflorian aflexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT braunkai aflexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT haulerotto aflexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT eberlemartin aflexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT kerndieterp aflexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT meixneralfredj aflexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT fleischermonika aflexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT laibleflorian flexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT braunkai flexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT haulerotto flexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT eberlemartin flexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT kerndieterp flexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT meixneralfredj flexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
AT fleischermonika flexibleplatformforcontrolledopticalandelectricaleffectsintailoredplasmonicbreakjunctions
_version_ 1721488493090177024