Single-photon wave packet correlations

2016 ◽  
pp. 205-218
Keyword(s):  
Author(s):  
Anita Dabrowska ◽  
Dariusz Chruscinski ◽  
Sagnik Chakraborty ◽  
Gniewomir Sarbicki

Abstract An evolution of a two-level system (qubit) interacting with a single-photon wave packet is analyzed. It is shown that a hierarchy of master equations gives rise to phase covariant qubit evolution. The temporal correlations in the input field induce nontrivial memory effects for the evolution of a qubit. It is shown that in the resonant case whenever time-local generator is regular (does not display singularities) the qubit evolution never displays information backflow. However, in general the generator might be highly singular leading to intricate non-Markovian effects. A detailed analysis of the exponential profile is provided which allows to illustrate all characteristic feature of the qubit evolution.


2003 ◽  
Author(s):  
M. G. Raymer ◽  
J. Noh ◽  
I. A. Walmsley ◽  
K. Banaszek

2016 ◽  
Vol 41 (13) ◽  
pp. 3126 ◽  
Author(s):  
D. Valente ◽  
M. F. Z. Arruda ◽  
T. Werlang

2008 ◽  
Vol 77 (1) ◽  
Author(s):  
So-Young Baek ◽  
Osung Kwon ◽  
Yoon-Ho Kim
Keyword(s):  

2021 ◽  
Vol 38 (3) ◽  
pp. 783
Author(s):  
Azadeh Ahmadian ◽  
Rasoul Malekfar

2019 ◽  
Vol 9 (1) ◽  
Author(s):  
Tim Kroh ◽  
Janik Wolters ◽  
Andreas Ahlrichs ◽  
Andreas W. Schell ◽  
Alexander Thoma ◽  
...  

Abstract Hybrid interfaces between distinct quantum systems play a major role in the implementation of quantum networks. Quantum states have to be stored in memories to synchronize the photon arrival times for entanglement swapping by projective measurements in quantum repeaters or for entanglement purification. Here, we analyze the distortion of a single-photon wave packet propagating through a dispersive and absorptive medium with high spectral resolution. Single photons are generated from a single In(Ga)As quantum dot with its excitonic transition precisely set relative to the Cesium D1 transition. The delay of spectral components of the single-photon wave packet with almost Fourier-limited width is investigated in detail with a 200 MHz narrow-band monolithic Fabry-Pérot resonator. Reflecting the excited state hyperfine structure of Cesium, “slow light” and “fast light” behavior is observed. As a step towards room-temperature alkali vapor memories, quantum dot photons are delayed for 5 ns by strong dispersion between the two 1.17 GHz hyperfine-split excited state transitions. Based on optical pumping on the hyperfine-split ground states, we propose a simple, all-optically controllable delay for synchronization of heralded narrow-band photons in a quantum network.


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