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- W2765806113 abstract "Tomography is the name under which all state reconstruction techniques are denoted,one of the most recognized examples being medical tomography. Quantumstate tomography is a procedure to determine the quantum state of a physical system.By performing homodyne measurements on resonance fluorescence from anartificial atom coupled to a one-dimensional transmission line, its quantum statecan be reconstructed. Resonance fluorescence is one of the simplest setups thatresults in non-classical states of light. If these states are non-classical in the sensethat they have a negative Wigner function, they can be used as a computationalresource for quantum computing.There are many different approaches to quantum computing. Some, like gatebased quantum computing using discrete variables like qubits, have been extensivelyresearched, both theoretically and experimentally. There exists and alternativeapproach: continuous variable quantum computing. The continuous variableswe will be concerned with are the components of the electromagnetic field thatconstitute the resonance fluorescence.There are different parameters that affect the nature of the resonance fluorescence,for example, the number of transmission lines the atom is coupled to, orthe strength of the driving field. In this work, we develop the tools necessary tonumerically simulate homodyne detection of resonance fluorescence for differentsets of parameters, and reconstruct the quantum state as well as calculating theWigner negativity." @default.
- W2765806113 created "2017-11-10" @default.
- W2765806113 creator A5022399107 @default.
- W2765806113 date "2017-01-01" @default.
- W2765806113 modified "2023-09-27" @default.
- W2765806113 title "Quantum state tomography of 1D resonance fluorescence" @default.
- W2765806113 hasPublicationYear "2017" @default.
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