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doctoral thesis

Crystalline materials for microresonator-based quantum optics

Javerzac-Galy, Clément Christian  
2019

Hybrid quantum systems are composed of different physical components that can perform simultaneously several tasks such as quantum computing, quantum sensing and quantum communication. Photons are at the core of many of the functionalities of these systems. Photons of various wavelengths are better suited for different applications: microwave for quantum information processing, mid-infrared for sensing and visible for transmitting quantum information. The ability to study, understand and control these photons is key for this purpose. Nonlinear processes are necessary to implement some of these tasks or to connect different quantum systems. Single-crystal materials, with their unique properties, provide a promising source of nonlinearities for classical and quantum photonics. The integration of crystalline materials with optical microresonators enhances the physical effects of interest for the different applications.

This thesis explores the innovative use of new materials and microresonator designs. Three main results are presented. First, a device architecture capable of direct and efficient quantum microwave-to-optical conversion. Second, a method to fabricate uncoated chalcogenide tapered fibres and to study the properties of crystalline microresonators in the mid-infrared spectral window. Third, the coupling of the excitonic emission of atomically-thin van der Waals crystals to microcavities. The findings of this thesis provide the technological basis for design and fabrication of new chipscale microresonator based devices.

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Type
doctoral thesis
DOI
10.5075/epfl-thesis-9127
Author(s)
Javerzac-Galy, Clément Christian  
Advisors
Kippenberg, Tobias  
Jury

professeure Cécile Hébert (présidente) ; Prof. Tobias Kippenberg (directeur de thèse) ; Prof. Nicolas Grandjean, Prof. Jérôme Faist, Dr Paul Seidler (rapporteurs)

Date Issued

2019

Publisher

EPFL

Publisher place

Lausanne

Public defense year

2019-05-31

Thesis number

9127

Total of pages

183

Subjects

hybrid quantum systems

•

nonlinear optics

•

quantum electro-optics

•

crystalline microresonators

•

microwave-to-optical frequency conversion

•

mid-infrared

•

chalcogenide

•

atomically-thin van der Waals crystals

•

monolayers

•

nanolasers

EPFL units
LPQM  
Faculty
SB  
School
IPHYS  
Doctoral School
EDPY  
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/156614
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