石墨烯
极化子
等离子体子
表面等离子体激元
纳米技术
准粒子
物理
表面等离子体子
凝聚态物理
材料科学
光电子学
超导电性
作者
Guangxin Ni,Alexander McLeod,Zhiyuan Sun,Lei Wang,Lin Xiong,K. W. Post,Sai Sunku,Bor‐Yuan Jiang,James Hone,Cory R. Dean,M. M. Fogler,D. N. Basov
出处
期刊:Nature
[Nature Portfolio]
日期:2018-05-01
卷期号:557 (7706): 530-533
被引量:555
标识
DOI:10.1038/s41586-018-0136-9
摘要
Plasmon polaritons are hybrid excitations of light and mobile electrons that can confine the energy of long-wavelength radiation at the nanoscale. Plasmon polaritons may enable many enigmatic quantum effects, including lasing 1 , topological protection2,3 and dipole-forbidden absorption 4 . A necessary condition for realizing such phenomena is a long plasmonic lifetime, which is notoriously difficult to achieve for highly confined modes 5 . Plasmon polaritons in graphene—hybrids of Dirac quasiparticles and infrared photons—provide a platform for exploring light–matter interaction at the nanoscale6,7. However, plasmonic dissipation in graphene is substantial 8 and its fundamental limits remain undetermined. Here we use nanometre-scale infrared imaging to investigate propagating plasmon polaritons in high-mobility encapsulated graphene at cryogenic temperatures. In this regime, the propagation of plasmon polaritons is primarily restricted by the dielectric losses of the encapsulated layers, with a minor contribution from electron–phonon interactions. At liquid-nitrogen temperatures, the intrinsic plasmonic propagation length can exceed 10 micrometres, or 50 plasmonic wavelengths, thus setting a record for highly confined and tunable polariton modes. Our nanoscale imaging results reveal the physics of plasmonic dissipation and will be instrumental in mitigating such losses in heterostructure engineering applications. The fundamental limits to plasmon damping in graphene are determined using nanoscale infrared imaging at cryogenic temperatures, and plasmon polaritons are observed to propagate over 10 micrometres in high-mobility encapsulated graphene.
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