4.6 Article

Entangled two-plasmon generation in carbon nanotubes and graphene-coated wires

期刊

PHYSICAL REVIEW B
卷 105, 期 16, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.105.165412

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资金

  1. Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior (CAPES)
  2. Conselho Nacional de Desenvolvimento Cientifico e Tecnologico (CNPq) [310365/2018-0]
  3. MCIN/AEI [PID2020-115221GB-C4]
  4. Aragon Government through Project [Q-503 MAD]
  5. Laboratory Directed Research and Development Program of Los Alamos National Laboratory [20190574ECR, 20220228ER]

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This study investigates the spontaneous decay of a quantum emitter near single-walled carbon nanotubes and graphene-coated wires. The results show enhanced generation of entangled states in single-walled carbon nanotubes and predict significantly higher emission rates compared to free space. The findings provide a basis for a new material platform for on-chip quantum information technologies.
We investigate the two-plasmon spontaneous decay of a quantum emitter near single-walled carbon nanotubes (SWCNTs) and graphene-coated wires (GCWs). We demonstrate efficient, enhanced generation of two-plasmon entangled states in SWCNTs due to the strong coupling between tunable guided plasmons and the quantum emitter. We predict two-plasmon emission rates more than twelve orders of magnitude higher than in free space, with average lifetimes of a few dozen nanoseconds. Given their low dimensionality, these systems could be more efficient for generating and detecting entangled plasmons in comparison to extended graphene. Indeed, we achieve a tunable spectrum of emission in GCWs, where sharp resonances occur precisely at the plasmons' minimum excitation frequencies. We show that by changing the material properties of the GCW's dielectric core, one could tailor the dominant modes and frequencies of the emitted entangled plasmons while keeping the decay rate ten orders of magnitude higher than in free space. By unveiling the unique properties of two-plasmon spontaneous emission processes in the presence of low-dimensional carbon-based nanomaterials, our findings set the basis for a novel material platform with applications to on-chip quantum information technologies.

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