| Literature DB >> 29146939 |
Cherif Belacel1, Yanko Todorov2, Stefano Barbieri1,3, Djamal Gacemi1, Ivan Favero1, Carlo Sirtori1.
Abstract
Most of the common technologies for detecting terahertz photons (>1 THz) at room temperature rely on slow thermal devices. The realization of fast and sensitive detectors in this frequency range is indeed a notoriously difficult task. Here we propose a novel device consisting of a subwavelength terahertz meta-atom resonator, which integrates a nanomechanical element and allows energy exchange between the mechanical motion and the electromagnetic degrees of freedom. An incident terahertz wave thus produces a nanomechanical signal that can be read out optically with high precision. We exploit this concept to demonstrate a terahertz detector that operates at room temperature with high sensitivity and a much higher frequency response compared to standard detectors. Beyond the technological issue of terahertz detection, our architecture opens up new perspectives for fundamental science of light-matter interaction at terahertz frequencies, combining optomechanical approaches with semiconductor quantum heterostructures.Entities:
Year: 2017 PMID: 29146939 PMCID: PMC5691196 DOI: 10.1038/s41467-017-01840-6
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919