| Literature DB >> 34632648 |
Kezhang Shi1, Zhaoyang Chen2, Xinan Xu1, Julian Evans1, Sailing He1,3,4.
Abstract
Collective optoelectronic phenomena such as plasmons and phonon polaritons can drive processes in many branches of nanoscale science. Classical physics predicts that a perfect thermal emitter operates at the black body limit. Numerous experiments have shown that surface phonon polaritons allow emission two orders of magnitude above the limit at a gap distance of ≈50 nm. This work shows that a supported multilayer graphene structure improves the state of the art by around one order of magnitude with a ≈1129-fold-enhancement at a gap distance of ≈55 nm. Coupled surface plasmon polaritons at mid- and far-infrared frequencies allow for near-unity photon tunneling across a broad swath of k-space enabling the improved result. Electric tuning of the Fermi-level allows for the detailed characterization and optimization of the colossal nanoscale heat transfer.Entities:
Keywords: coupled plasmon polaritons; electric tuning; graphene Fermi level; multilayer graphene/SU8 heterostructures; nanoscale heat transfer manipulation
Year: 2021 PMID: 34632648 DOI: 10.1002/adma.202106097
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849