Skip to main content
dd
CIC nanoGUNE
  • en
  • es
  • eu

User account menu

  • Sartu

Main Menu ES

  • nanoGUNE
    • Hitz bitan
    • Antolakuntza eta finantzaketa
    • Pertsonak
    • Bat egin
    • Bizi
    • Prentsa-bulegoa
    • nanoPeople
  • Ikerketa
    • Ikerketa
    • Argitalpenak
    • Proiektuak
    • Kanpo-zerbitzuak
  • Transferentzia
    • Transferentzia
    • Enpresa berriak
    • PI Zorroa
    • Industry collaborative research positions
    • Strategic lines
    • Kanpo-zerbitzuak
    • Albisteak
  • Formakuntza
    • Master projects
    • Gradu amaierako proiektuak
    • Udako praktikaldiak
    • Doktoretza programa
  • Gizartea

User menu

  • Sartu
  1. Azala
  2. Nanooptika
  3. Boron nitride nanoresonators for phonon-enhanced molecular vibrational spectroscopy at the strong coupling limit

Boron nitride nanoresonators for phonon-enhanced molecular vibrational spectroscopy at the strong coupling limit

2018/01/09

An accepted paper at Light-Science & Applications

M. Autore, I. Dolado, F.J. Alfaro-Mozaz, R. Esteban, A. Atxabal, F. Casanova, L. Hueso, P. Alonso-Gonzalez, J. Aizpurua, A. Nikitin, S. Velez and R. Hillenbrand

Light-Science & Applications, (2018)

Boron nitride nanoresonators for phonon-enhanced molecular vibrational spectroscopy at the strong coupling limit

Enhanced light-matter interactions are the basis of surface enhanced infrared absorption (SEIRA) spectroscopy, and conventionally rely on plasmonic materials and their capability to focus light to nanoscale spot sizes. Phonon polariton nanoresonators made of polar crystals could represent an interesting alternative, since they exhibit large quality factors, which go far beyond those of their plasmonic counterparts. The recent emergence of van der Waals crystals enables the fabrication of high-quality nanophotonic resonators based on phonon polaritons, as reported for the prototypical infrared-phononic material hexagonal boron nitride (h-BN). In this work we use, for the first time, phononpolariton-resonant h-BN ribbons for SEIRA spectroscopy of small amounts of organic molecules in Fourier transform infrared spectroscopy. Strikingly, the interaction between phonon polaritons and molecular vibrations reaches experimentally the onset of the strong coupling regime, while numerical simulations predict that vibrational strong coupling can be fully achieved. Phonon polariton nanoresonators thus could become a viable platform for sensing, local control of chemical reactivity and infrared quantum cavity optics experiments. 

 

 

 

Tags
NANOOPTICS
Rainer Hillenbrand
  • whatsapp
  • facebook
  • twitter
  • linkedin
  • print

Lotutako albisteak

  • 2025/05/06

    NanoGUNEren Dorre Kuantikoa —The Quantum Tower— eraikitzen hasi da

  • 2025/04/01

    Donostia, spintronikaren eta orbitronikaren hiriburu

  • 2025/02/14

    Review Article Highlights 25 Years of Modern Near-field Optical Nanoimaging

  • 2025/02/11

    Scientists synthesize 2D polyaniline crystal with unique metallic out-of-plane conductivity

  • 2025/02/07

    Emakumeak Zientzianek berdintasunaren aldeko ekintza txiki bakoitzaren ahalmena azpimarratzen du

  • CIC nanoGUNE
  • Tolosa Hiribidea, 76
  • E-20018 Donostia / San Sebastian
  • +34 943 574 000 · nano@nanogune.eu
  • Facebook Twitter Youtube Linkedin Instagram Subscribe to our Newsletter

Menú pie principal

  • nanoGUNE
  • Ikerketa
  • Transferentzia
  • Formakuntza
  • Gizartea
  • nanoPeople

Menú pie servicios

  • Kanpo-zerbitzuak
  • Argitalpenak
  • Mintegiak
  • Bat egin
  • Prentsa-bulegoa
  • Kontratatzailearen profila
  • Corporate Compliance

Menú pie grupos

  • Nanomagnetismoa
  • Nanooptika
  • Self AssemblyAutomihiztadura
  • Nanobiosistemak
  • Nanogailuak
  • Mikroskopia Elektronikoa

Menú pie grupos 2

  • Teoria
  • Nanomaterialak
  • Detekzio Kuantikoko Mikroskopia
  • Nanoingeniaritza
  • Hardware Kuantikoa

Funded by

  • EJ/GV
  • Diputación
  • FEDER
  • FEDER
  • Ministerio de Ciencia e Innovación

Member of

  • BRTA
  • SOMM

Distinctions

  • Distinción de Excelencia María de Maeztu 2022-2025
  • Excellence Research
  • UNE-166002

Menú legales

  • Irisgarritasuna
  • Lege-oharra
  • Pribatutasun politika
  • Cookiei buruzko politika
  • Konfidentzialitate politika
by ACC