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A Single Trapped Rydberg Ion: Springer Theses

Autor Gerard Higgins
en Limba Engleză Paperback – 6 noi 2020
Systems of trapped ions and systems of ultracold Rydberg atoms are used at the forefront of quantum physics research and they make strong contenders as platforms for quantum technologies. Trapped Rydberg ions are a new hybrid technology envisaged to have both the exquisite control of trapped ion systems and the strong interactions of Rydberg atoms.

In this work a single trapped Rydberg ion is experimentally investigated. A trapped strontium ion is excited to Rydberg states using two ultraviolet lasers. Effects of the strong trapping electric fields on the highly-sensitive Rydberg ion are studied. After mitigating unwanted trap effects, the ion is coherently excited to Rydberg states and a quantum gate is demonstrated. This thesis lays much of the experimental groundwork for research using this novel system.

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Specificații

ISBN-13: 9783030337728
ISBN-10: 3030337723
Pagini: 98
Ilustrații: XVII, 98 p. 49 illus., 41 illus. in color.
Dimensiuni: 155 x 235 mm
Greutate: 0.18 kg
Ediția:1st ed. 2019
Editura: Springer International Publishing
Colecția Springer
Seria Springer Theses

Locul publicării:Cham, Switzerland

Cuprins

Introduction.- Properties of Strontium Rydberg Ions.- Experimental Setup.- Two-Photon Rydberg Excitation.- Ion Loss by Double Ionisation.- Trap Effects.- Coherent Excitation of Rydberg States.- Summary and Outlook.

Notă biografică



Textul de pe ultima copertă

Systems of trapped ions and systems of ultracold Rydberg atoms are used at the forefront of quantum physics research and they make strong contenders as platforms for quantum technologies. Trapped Rydberg ions are a new hybrid technology envisaged to have both the exquisite control of trapped ion systems and the strong interactions of Rydberg atoms.

In this work a single trapped Rydberg ion is experimentally investigated. A trapped strontium ion is excited to Rydberg states using two ultraviolet lasers. Effects of the strong trapping electric fields on the highly-sensitive Rydberg ion are studied. After mitigating unwanted trap effects, the ion is coherently excited to Rydberg states and a quantum gate is demonstrated. This thesis lays much of the experimental groundwork for research using this novel system.


Caracteristici

Nominated as an outstanding Ph.D. thesis by the Stockholm University, Stockholm, Sweden Essential background work for realization of trapped-ion qubits Research conducted at University of Innsbruck and Stockholm University – cotutelle PhD