Approaches for Positioning the Active Medium in Hybrid Nanoplasmonics. Focus on Plasmon-Assisted Photopolymerization.


Journal

ACS photonics
ISSN: 2330-4022
Titre abrégé: ACS Photonics
Pays: United States
ID NLM: 101634366

Informations de publication

Date de publication:
16 Oct 2024
Historique:
received: 10 05 2024
revised: 05 08 2024
accepted: 06 08 2024
medline: 21 10 2024
pubmed: 21 10 2024
entrez: 21 10 2024
Statut: epublish

Résumé

Over the past 20 years, hybrid plasmonics for nanoemitters of light or for nanoabsorbers, based on weak or strong coupling between metallic nanocavities and active media (emissive or absorbing entities), have given rise to important research efforts. One of the main current challenges is the control of the nanoscale spatial distribution and associated symmetry of the active medium in the vicinity of the metallic nanoparticles. In this review, we first recall the main principles of weak and strong coupling by stressing the importance of controlling the spatial distribution of the active medium and present the main approaches developed for achieving this control. Nine different approaches are identified. We then focus our attention on one of them based on plasmonic photopolymerization and discuss the flexibility of this approach in terms of control of the spatial symmetry of the hybrid nanosystem metal-polymer nanoemitters and the resulting polarization dependence of the light emission. The different approaches are analyzed and compared with each other, and some future perspectives and challenges are finally discussed.

Identifiants

pubmed: 39429857
doi: 10.1021/acsphotonics.4c00868
pmc: PMC11488146
doi:

Types de publication

Journal Article Review

Langues

eng

Pagination

3933-3953

Informations de copyright

© 2024 The Authors. Published by American Chemical Society.

Déclaration de conflit d'intérêts

The authors declare no competing financial interest.

Auteurs

Minyu Chen (M)

School of Mechatronic Engineering and Automation, Key Lab of Advanced Display and System Application, Ministry of Education, Shanghai University, Shanghai 2000072, PR China.
Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Sylvie Marguet (S)

Université Paris Saclay, CEA, CNRS, NIMBE, Gif sur Yvette F-91191, France.

Ali Issa (A)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Safi Jradi (S)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Christophe Couteau (C)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Céline Fiorini-Debuisschert (C)

Université Paris Saclay, CEA, CNRS, SPEC, Gif sur Yvette F-91191, France.

Ludovic Douillard (L)

Université Paris Saclay, CEA, CNRS, SPEC, Gif sur Yvette F-91191, France.

Olivier Soppera (O)

Université de Haute Alsace, CNRS, IS2M UMR 7361, Mulhouse F-68100, France.
Université de Strasbourg, Strasbourg cedex F-67081, France.

Dandan Ge (D)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Jérôme Plain (J)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Xuan Zhou (X)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Cuong Dang (C)

CNRS-International-NTU-Thales Research Alliance (CINTRA), IRL 3288, 50 Nanyang Drive, Singapore 637553, Singapore.
School of Electrical and Electronic Engineering, Nanyang Technological University, Nanyang Avenue, Singapore 639798, Singapore.

Jérémie Béal (J)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Sergei Kostcheev (S)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Régis Déturche (R)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.

Tao Xu (T)

School of Mechatronic Engineering and Automation, Key Lab of Advanced Display and System Application, Ministry of Education, Shanghai University, Shanghai 2000072, PR China.
Sino-European School of Technology, Shanghai University, Shanghai 200444, PR China.

Bin Wei (B)

School of Mechatronic Engineering and Automation, Key Lab of Advanced Display and System Application, Ministry of Education, Shanghai University, Shanghai 2000072, PR China.

Renaud Bachelot (R)

Light, Nanomaterials & Nanotechnologies (L2n) Laboratory, CNRS UMR 7076. University of Technology of Troyes-UTT, 12 rue Marie Curie, Troyes Cedex F-10004, France.
CNRS-International-NTU-Thales Research Alliance (CINTRA), IRL 3288, 50 Nanyang Drive, Singapore 637553, Singapore.
School of Electrical and Electronic Engineering, Nanyang Technological University, Nanyang Avenue, Singapore 639798, Singapore.
Sino-European School of Technology, Shanghai University, Shanghai 200444, PR China.

Classifications MeSH