| Literature DB >> 29180742 |
Klaas-Jan Tielrooij1, Niels C H Hesp2, Alessandro Principi3,4, Mark B Lundeberg2, Eva A A Pogna5, Luca Banszerus6, Zoltán Mics7, Mathieu Massicotte2, Peter Schmidt2, Diana Davydovskaya2, David G Purdie8, Ilya Goykhman8, Giancarlo Soavi8, Antonio Lombardo9, Kenji Watanabe9, Takashi Taniguchi9, Mischa Bonn7, Dmitry Turchinovich7,10, Christoph Stampfer6, Andrea C Ferrari8, Giulio Cerullo5, Marco Polini11, Frank H L Koppens12,13.
Abstract
Van der Waals heterostructures have emerged as promising building blocks that offer access to new physics, novel device functionalities and superior electrical and optoelectronic properties 1-7 . Applications such as thermal management, photodetection, light emission, data communication, high-speed electronics and light harvesting 8-16 require a thorough understanding of (nanoscale) heat flow. Here, using time-resolved photocurrent measurements, we identify an efficient out-of-plane energy transfer channel, where charge carriers in graphene couple to hyperbolic phonon polaritons 17-19 in the encapsulating layered material. This hyperbolic cooling is particularly efficient, giving picosecond cooling times for hexagonal BN, where the high-momentum hyperbolic phonon polaritons enable efficient near-field energy transfer. We study this heat transfer mechanism using distinct control knobs to vary carrier density and lattice temperature, and find excellent agreement with theory without any adjustable parameters. These insights may lead to the ability to control heat flow in van der Waals heterostructures.Entities:
Year: 2017 PMID: 29180742 DOI: 10.1038/s41565-017-0008-8
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213