Hyperbolic phonon-polariton electroluminescence in graphene-hBN van der Waals heterostructures
Qiushi Guo, Iliya Esin, Cheng Li, Chen Chen, Song Liu, James H. Edgar,, Selina Zhou, Eugene Demler, Gil Refael, Fengnian Xia

TL;DR
This paper demonstrates all-electrical excitation of hyperbolic phonon-polaritons in graphene-hBN heterostructures, enabling mid-IR electroluminescence with potential applications in tunable lasers and device cooling.
Contribution
It introduces a novel method to excite phonon-polaritons electrically in van der Waals heterostructures, bypassing optical excitation limitations.
Findings
Bright mid-IR electroluminescence of HPhPs observed
Electroluminescence depends on temperature and carrier density
Electroluminescence arises from inter-band and intra-band transitions
Abstract
Phonon-polaritons are electromagnetic waves resulting from the coherent coupling of photons with optical phonons in polar dielectrics. Due to their exceptional ability to confine electric fields to deep subwavelength scales with low loss, they are uniquely poised to enable a suite of applications beyond the reach of conventional photonics, such as sub-diffraction imaging and near-field energy transfer. The conventional approach to exciting phonon-polaritons through optical methods, however, necessitates costly mid-infrared and terahertz coherent light sources along with near-field scanning probes, and generally leads to low excitation efficiency due to the substantial momentum mismatch between phonon-polaritons and free-space photons. Here, we demonstrate that under proper conditions, phonon-polaritons can be excited all-electrically by flowing charge carriers. Specifically, in…
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Taxonomy
TopicsThermal Radiation and Cooling Technologies · Mechanical and Optical Resonators · Quantum Electrodynamics and Casimir Effect
