Tunable plasmonic devices by integrating graphene with ferroelectric nanocavity
arXiv:2201.03858 · doi:10.1002/admi.202200776
Abstract
Graphene plasmons are able to become the fundermental of novel conceptual photonic devices, resulting from their unique characteristics containing excitation at room temperature and tunable spectral selectivity in different frequencies. The pursuit of efficiently exciting and manipulating graphene plasmons is necessary and significant for high-performance devices. Here, we investigate graphene plasmon wave propagating in ferroelectric nanocavity array. We experimentally show that the the periodic ferroelectric polarizations could be used for doping graphene into desired spatial carrier density patterns. Based on a theoretical model that considers periodic ununiform conductivity across graphene sheet, the simulation results show surface plasmon polaritons (SPP) in graphene can be excited by an incident light in a similar way to the excitation of photonic crystal resonant modes. The graphene SPP resonance can be tuned from ~720 to ~1 000 cm-1 by rescaling the ferroelectric nanocavity array, and from ~540 to ~780 cm-1 by dynamically changing the applied gate voltage. Our strategy of graphene carrier engineering to excite SPP offers a promissing way for large-scale, non-destructive fabrication of novel graphene photonic devices.
16 pages, 7 figures
References in corpus (12)
- The Raman Fingerprint of Graphene
- Electrochemically Top Gated Graphene: Monitoring Dopants by Raman Scattering
- Graphene plasmonics
- Dielectric function, screening, and plasmons in 2D graphene
- Graphene Plasmonics for Terahertz to Mid-Infrared Applications
- Mid-Infrared Plasmonic Biosensing with Graphene
- Manipulating infrared photons using plasmons in transparent graphene superlattices
- Mid-infrared plasmons in scaled graphene nanostructures
- Electrically controlled terahertz magneto-optical phenomena in continuous and patterned graphene
- Splitting of the Raman band of graphene subjected to strain
- Ferroelectric superdomain controlled graphene plasmon for tunable mid-infrared photodetector with dual-band spectral selectivity
- Type-printable photodetector arrays for multichannel meta-infrared imaging