Extremely efficient terahertz high-harmonic generation in graphene by hot Dirac fermions
Autor: | Akimitsu Narita, Dmitry Turchinovich, Hassan A. Hafez, Zhaoyang Liu, Sergey Kovalev, Jochen Teichert, Bertram Green, Klaus Müllen, Min Chen, Michael Gensch, Zongping Chen, Mischa Bonn, Klaas-Jan Tielrooij, Zoltan Mics, Semyon Germanskiy, Ulf Lehnert, Nilesh Awari, Jan-Christoph Deinert, Zhe Wang |
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Přispěvatelé: | Optical Physics of Condensed Matter |
Jazyk: | angličtina |
Rok vydání: | 2018 |
Předmět: |
Electromagnetic field
Terahertz radiation Dirac (software) Physics::Optics COPPER 02 engineering and technology FILMS 01 natural sciences 7. Clean energy law.invention symbols.namesake ZNTE law 0103 physical sciences EXCITATION ABSORPTION DETECTORS High harmonic generation THZ 010306 general physics CONDUCTIVITY Physics Multidisciplinary Graphene business.industry Physik (inkl. Astronomie) 021001 nanoscience & nanotechnology Dirac fermion Harmonics symbols Harmonic Optoelectronics OPTICS 0210 nano-technology business |
Zdroj: | Nature Nature, 561(7724), 507-11. Nature Publishing Group |
ISSN: | 0028-0836 |
Popis: | Multiple optical harmonic generation—the multiplication of photon energy as a result of nonlinear interaction between light and matter—is a key technology in modern electronics and optoelectronics, because it allows the conversion of optical or electronic signals into signals with much higher frequency, and the generation of frequency combs. Owing to the unique electronic band structure of graphene, which features massless Dirac fermions1–3, it has been repeatedly predicted that optical harmonic generation in graphene should be particularly efficient at the technologically important terahertz frequencies4–6. However, these predictions have yet to be confirmed experimentally under technologically relevant operation conditions. Here we report the generation of terahertz harmonics up to the seventh order in single-layer graphene at room temperature and under ambient conditions, driven by terahertz fields of only tens of kilovolts per centimetre, and with field conversion efficiencies in excess of 10−3, 10−4 and 10−5 for the third, fifth and seventh terahertz harmonics, respectively. These conversion efficiencies are remarkably high, given that the electromagnetic interaction occurs in a single atomic layer. The key to such extremely efficient generation of terahertz high harmonics in graphene is the collective thermal response of its background Dirac electrons to the driving terahertz fields. The terahertz harmonics, generated via hot Dirac fermion dynamics, were observed directly in the time domain as electromagnetic field oscillations at these newly synthesized higher frequencies. The effective nonlinear optical coefficients of graphene for the third, fifth and seventh harmonics exceed the respective nonlinear coefficients of typical solids by 7–18 orders of magnitude7–9. Our results provide a direct pathway to highly efficient terahertz frequency synthesis using the present generation of graphene electronics, which operate at much lower fundamental frequencies of only a few hundreds of gigahertz. Efficient terahertz harmonic generation—challenging but important for ultrahigh-speed optoelectronic technologies—is demonstrated in graphene through a nonlinear process that could potentially be generalized to other materials. |
Databáze: | OpenAIRE |
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