Towards Quantum Information Processing with Atom-Filled Hollow-Core Fibres

By Ben Sparkes

Physics, University of Adelaide, Adelaide, South Australia, Australia

Published on

Abstract

Quantum information networks will deliver the capability for long- distance, provably-secure communications via quantum key distribution, as well as optical quantum computing. Our work aims to provide components for these quantum networks: our specific design makes use of hollow-core photonic crystal fibres (HCPCFs) filled with rubidium atoms. The tight transverse confinement (diameter of tens of microns) and extended interaction lengths (centimetres) of the HCPCFs provides an extremely optically dense medium, ideal for efficient quantum information storage and for achieving strong atom- mediated photon-photon interactions.

I will present results from our experiments aiming for efficient, coherent and noiseless storage of high-bandwidth optical pulses in warm rubidium-filled HCPCFs using the off-resonance cascade absorption (ORCA) technique. We have also recently demonstrated the ability to load a record number of laser-cooled atoms into a hollow-core optical fibre and I will present our latest results towards achieving high efficiency, long-lived storage.

Bio

Ben Sparkes

Ben Sparkes obtained his PhD in Physics from the Australian National University in 2013, where he developed techniques to store and manipulate optical quantum information. In 2013 he moved to the University of Melbourne to work on the development of a cold atom electron/ion source, aiming to create ultra-short ultra-bright bunches of electrons for single-shot diffraction imaging of biological samples, as well as focused ion beams for sub-nanometre resolution fabrication. He was awarded a McKenzie Fellowship from the University of Melbourne from 2014-2016, which allowed him to investigate novel methods to improve the source performance.

 

In 2017, Ben Sparkes was awarded an Australian Research Council DECRA Fellow to join the Precision Measurement Group at the Institute for Photonics and Advanced Sensing, University of Adelaide working towards realising a fibre-based optical quantum information network for absolutely secure communications and next- generation computing. He is excited to be spending 3 months with the Gaeta group at Columbia University of a Fulbright Future Scholarship.

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Cite this work

Researchers should cite this work as follows:

  • Ben Sparkes (2019), "Towards Quantum Information Processing with Atom-Filled Hollow-Core Fibres," https://nanohub.org/resources/31413.

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Time

Location

Room 1001, Birck Nanotechnology Center, Purdue University, West Lafayette, IN

Tags

Towards Quantum Information Processing with Atom-Filled Hollow-Core Fibres
  • Towards Optical Quantum Information Processing in Atom-Filled Hollow-Core 1. Towards Optical Quantum Inform… 0
    00:00/00:00
  • Outline 2. Outline 116.75008341675009
    00:00/00:00
  • What is a Quantum Memory? 3. What is a Quantum Memory? 159.95995995995997
    00:00/00:00
  • What is a GOOD Quantum Memory? 4. What is a GOOD Quantum Memory? 218.4517851184518
    00:00/00:00
  • Why Do We Want One? 5. Why Do We Want One? 332.73273273273276
    00:00/00:00
  • Quantum Networks – Many Shapes and Sizes 6. Quantum Networks – Many Shap… 400.73406740073409
    00:00/00:00
  • The Ideal Storage Medium? 7. The Ideal Storage Medium? 849.71638304971646
    00:00/00:00
  • How Are We Doing? 8. How Are We Doing? 1132.6993660326993
    00:00/00:00
  • Outline 9. Outline 1240.5071738405072
    00:00/00:00
  • The Precision Measurement Group 10. The Precision Measurement Grou… 1253.7871204537871
    00:00/00:00
  • Off-Resonance Cascade Absorption (ORCA) 11. Off-Resonance Cascade Absorpti… 1283.7504170837506
    00:00/00:00
  • ORCA Set-Up 12. ORCA Set-Up 1566.6666666666667
    00:00/00:00
  • ORCA Results 13. ORCA Results 1674.5745745745746
    00:00/00:00
  • ORCA Improvements 14. ORCA Improvements 1831.4314314314315
    00:00/00:00
  • ORCA Improvements 15. ORCA Improvements 1942.7427427427429
    00:00/00:00
  • Outline 16. Outline 2005.1051051051052
    00:00/00:00
  • The Precision Measurement Group 17. The Precision Measurement Grou… 2034.7681014347681
    00:00/00:00
  • Cold Atoms in Fibre 18. Cold Atoms in Fibre 2057.9913246579913
    00:00/00:00
  • Cold Atoms in HCF - State of the Art 19. Cold Atoms in HCF - State of t… 2082.7827827827828
    00:00/00:00
  • Cold Atoms in Fibre Set-Up 20. Cold Atoms in Fibre Set-Up 2183.0497163830496
    00:00/00:00
  • Cold Atoms in Fibre Loading 21. Cold Atoms in Fibre Loading 2267.667667667668
    00:00/00:00
  • Cold Atoms in Fibre Absorption 22. Cold Atoms in Fibre Absorption 2314.7814481147816
    00:00/00:00
  • Cold Atoms in Fibre Absorption 23. Cold Atoms in Fibre Absorption 2390.8908908908911
    00:00/00:00
  • Long-Lived Cold Atoms in Fibre? 24. Long-Lived Cold Atoms in Fibre… 2420.6206206206207
    00:00/00:00
  • Long-Lived Cold Atoms in Fibre? 25. Long-Lived Cold Atoms in Fibre… 2604.0040040040039
    00:00/00:00
  • Measuring Coherence - EIT 26. Measuring Coherence - EIT 2726.2262262262261
    00:00/00:00
  • Coherence Measurement 27. Coherence Measurement 2800.900900900901
    00:00/00:00
  • Future Work: Efficient Cold Atom Quantum Memory 28. Future Work: Efficient Cold At… 2894.9282615949282
    00:00/00:00
  • Future Work: Two-Photon Gate in QM 29. Future Work: Two-Photon Gate i… 3063.2966299632967
    00:00/00:00
  • Future Work: Quantum Simulation with Photons 30. Future Work: Quantum Simulatio… 3142.2756089422755
    00:00/00:00
  • Conclusions 31. Conclusions 3301.6683350016683
    00:00/00:00
  • Thanks! 32. Thanks! 3332.7994661328
    00:00/00:00