An investigation on the nonclassical and quantum phase properties of a family of engineered quantum states
Priya Malpani

TL;DR
This thesis investigates the nonclassical and quantum phase properties of engineered quantum states, especially displaced Fock states, highlighting how non-Gaussian operations influence their quantum features and potential for quantum supremacy.
Contribution
It provides a detailed analysis of non-Gaussianity effects on nonclassical and phase properties of displaced Fock states, extending previous studies with new insights into quantum state engineering.
Findings
Non-Gaussian operations enhance nonclassical features.
Quantum phase properties depend on state engineering.
Comparison of different non-Gaussianity induction methods.
Abstract
The main focus of this thesis is to study the nonclassical and phase properties of a family of engineered quantum states, most of which show various nonclassical features. The beauty of these states is that these states can be used to establish quantum supremacy. Earlier, a considerable amount of works has been reported on various types of quantum states and their nonclassical properties. Here, complementing the earlier works, the effect of non-Gaussianity inducing operators on the nonclassical and phase properties of displaced Fock states have been studied. This thesis includes 6 chapters. In Chapter 1, motivation behind performing the present work is stated explicitly, also the basic concepts of quantum optics are discussed with a specific attention on the witnesses and measures of nonclassicality. In Chapter 2, nonclassical properties of photon added and subtracted displaced Fock…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · Quantum Computing Algorithms and Architecture
