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On-chip single photon filtering and multiplexing in hybrid quantum photonic circuits.
Elshaari, Ali W; Zadeh, Iman Esmaeil; Fognini, Andreas; Reimer, Michael E; Dalacu, Dan; Poole, Philip J; Zwiller, Val; Jöns, Klaus D.
Afiliação
  • Elshaari AW; Quantum Nano Photonics Group, Department of Applied Physics, Royal Institute of Technology (KTH), 106 91, Stockholm, Sweden. elshaari@kth.se.
  • Zadeh IE; Kavli Institute of Nanoscience Delft, Delft University of Technology, 2628 CJ, Delft, The Netherlands. elshaari@kth.se.
  • Fognini A; Kavli Institute of Nanoscience Delft, Delft University of Technology, 2628 CJ, Delft, The Netherlands.
  • Reimer ME; Single Quantum, 2628 CJ, Delft, The Netherlands.
  • Dalacu D; Kavli Institute of Nanoscience Delft, Delft University of Technology, 2628 CJ, Delft, The Netherlands.
  • Poole PJ; Institute for Quantum Computing and Department of Electrical & Computer Engineering, University of Waterloo, Waterloo, Ontario, Canada, N2L 3G1.
  • Zwiller V; National Research Council of Canada, Ottawa, Ontario, Canada, K1A 0R6.
  • Jöns KD; National Research Council of Canada, Ottawa, Ontario, Canada, K1A 0R6.
Nat Commun ; 8(1): 379, 2017 08 30.
Article em En | MEDLINE | ID: mdl-28855499
Quantum light plays a pivotal role in modern science and future photonic applications. Since the advent of integrated quantum nanophotonics different material platforms based on III-V nanostructures-, colour centers-, and nonlinear waveguides as on-chip light sources have been investigated. Each platform has unique advantages and limitations; however, all implementations face major challenges with filtering of individual quantum states, scalable integration, deterministic multiplexing of selected quantum emitters, and on-chip excitation suppression. Here we overcome all of these challenges with a hybrid and scalable approach, where single III-V quantum emitters are positioned and deterministically integrated in a complementary metal-oxide-semiconductor-compatible photonic circuit. We demonstrate reconfigurable on-chip single-photon filtering and wavelength division multiplexing with a foot print one million times smaller than similar table-top approaches, while offering excitation suppression of more than 95 dB and efficient routing of single photons over a bandwidth of 40 nm. Our work marks an important step to harvest quantum optical technologies' full potential.Combining different integration platforms on the same chip is currently one of the main challenges for quantum technologies. Here, Elshaari et al. show III-V Quantum Dots embedded in nanowires operating in a CMOS compatible circuit, with controlled on-chip filtering and tunable routing.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article