DocumentCode :
1324930
Title :
Realization of Single-Photon Frequency-Domain Qubit Channels Using Phase Modulators
Author :
Capmany, José ; Fernández-Pousa, Carlos R.
Author_Institution :
ITEAM Res. Inst., Univ. Politec. de Valencia, Valencia, Spain
Volume :
4
Issue :
6
fYear :
2012
Firstpage :
2074
Lastpage :
2084
Abstract :
In a recent paper, have developed a scheme for the stochastic implementation of arbitrary quantum operations on multimode single-photon qudit states by using reconfigurable linear-optic systems. Based on this idea, we explore the use of phase modulation for the realization of qubit channels in the frequency basis. Single-photon states belonging to two different frequency modes differing by the modulator´s driving frequency represent the input dual-rail qubit states. The channel is implemented by a phase modulator followed by a fiber Bragg grating, taking advantage of the high degree of reconfigurability and microwave bandwidth shown by electrooptic modulation technology. The channels are realized by a combination of three techniques: 1) suitably designed driving waveforms, which are probabilistically addressed to the modulator; 2) the corresponding addressing probabilities; and 3) the grating transmittance at the values of the frequency basis. The proposed scheme results in nonoptimal success probabilities but is shown to allow for a compact implementation of the conventional qubit random unitary channels and the qubit amplitude-damping channel.
Keywords :
Bragg gratings; electro-optical modulation; microwave photonics; optical design techniques; phase modulation; quantum computing; quantum optics; addressing probabilities; arbitrary quantum operations; compact implementation; conventional qubit random unitary channels; driving waveforms; electrooptic modulation; fiber Bragg grating; frequency basis; frequency modes; grating transmittance; input dual-rail qubit states; microwave bandwidth; modulator driving frequency; multimode single-photon qudit states; nonoptimal success probabilities; phase modulators; qubit amplitude-damping channel; reconfigurability; reconfigurable linear-optic systems; single-photon frequency-domain qubit channels; stochastic implementation; Bragg gratings; Frequency modulation; Linear systems; Phase modulation; Photonics; Quantum information; microwave photonics;
fLanguage :
English
Journal_Title :
Photonics Journal, IEEE
Publisher :
ieee
ISSN :
1943-0655
Type :
jour
DOI :
10.1109/JPHOT.2012.2226022
Filename :
6336771
Link To Document :
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