Nano-photonics in III-V semiconductors for integrated quantum optical circuits

Author(s)
Bibliographic Information

Nano-photonics in III-V semiconductors for integrated quantum optical circuits

Nicholas Andrew Wasley

(Springer theses : recognizing outstanding Ph. D. research)

Springer, c2014

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Note

"Doctoral thesis accepted by University of Sheffield, UK"--T.p.

Description and Table of Contents

Description

This thesis breaks new ground in the physics of photonic circuits for quantum optical applications. The photonic circuits are based either on ridge waveguides or photonic crystals, with embedded quantum dots providing the single qubit, quantum optical emitters. The highlight of the thesis is the first demonstration of a spin-photon interface using an all-waveguide geometry, a vital component of a quantum optical circuit, based on deterministic single photon emission from a single quantum dot. The work makes a further important contribution to the field by demonstrating the effects and limitations that inevitable disorder places on photon propagation in photonic crystal waveguides, a further key component of quantum optical circuits. Overall the thesis offers a number of highly novel contributions to the field; those on chip circuits may prove to be the only means of scaling up the highly promising quantum-dot-based quantum information technology.

Table of Contents

Introduction.- Experimental methods.- Disorder limited photon propagation and Anderson localisation in photonic crystal waveguides.- On-chip interface for in-plane polarisation transfer for quantum information processing.- Direct in-plane readout of QD spin.- InP QDs in GaInP photonic crystal cavities.- Development of additional technological approaches.- Conclusions and future directions.

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Details
  • NCID
    BB15173637
  • ISBN
    • 9783319015132
  • Country Code
    sz
  • Title Language Code
    eng
  • Text Language Code
    eng
  • Place of Publication
    Cham
  • Pages/Volumes
    xv, 129 p.
  • Size
    24 cm
  • Parent Bibliography ID
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