Recyclable amplification protocol for the single-photon entangled state

2015 ◽  
Vol 12 (4) ◽  
pp. 045203 ◽  
Author(s):  
Lan Zhou ◽  
Yu-Bo Sheng
2021 ◽  
Vol 53 (7) ◽  
Author(s):  
Ali Motazedifard ◽  
Seyed Ahmad Madani ◽  
N. S. Vayaghan

AbstractUsing the type-I SPDC process in BBO nonlinear crystal, we generate a polarization-entangled state near to the maximally-entangled Bell-state with high-visibility (high-brightness) 98.50 ± 1.33% (87.71 ± 4.45%) for HV (DA) basis. We calculate the CHSH version of the Bell inequality, as a nonlocal realism test, and find a strong violation from the classical physics or any hidden variable theory, S = 2.71 ± 0.10. Via measuring the coincidence count rate in the SPDC process, we obtain the quantum efficiency of single-photon detectors around (25.5 ± 3.4)%, which is in good agreement to their manufacturer company. As expected, we verify the linear dependency of the CC rate vs. pump power of input CW-laser, which may yield to find the effective second-order susceptibility crystal. Using the theory of the measurement of qubits, includes a tomographic reconstruction of quantum states due to the linear set of 16 polarization-measurement, together with a maximum-likelihood-technique, which is based on the numerical optimization, we calculate the physical non-negative definite density matrices, which implies on the non-separability and entanglement of prepared state. By having the maximum likelihood density operator, we calculate precisely the entanglement measures such as Concurrence, entanglement of formation, tangle, logarithmic negativity, and different entanglement entropies such as linear entropy, Von-Neumann entropy, and Renyi 2-entropy. Finally, this high-brightness and low-rate entangled photons source can be used for short-range quantum measurements in the Lab.


2010 ◽  
Vol 08 (07) ◽  
pp. 1199-1206 ◽  
Author(s):  
PEI-MIN LU ◽  
YAN XIA ◽  
JIE SONG ◽  
HE-SHAN SONG

We demonstrate a linear optical protocol to generate W state in terms of optical elements within a network. The proposed setup involves simple linear optical elements, N-photon polarization entangled state, and conventional photon detectors that only distinguish the vacuum and nonvacuum Fock number states. We show that with local operations, single-photon measurement, and one way classical communication, the protocol can be successfully realized with a certain probability.


2013 ◽  
Vol 88 (1) ◽  
Author(s):  
Rui-Bo Jin ◽  
Ryosuke Shimizu ◽  
Fumihiro Kaneda ◽  
Yasuyoshi Mitsumori ◽  
Hideo Kosaka ◽  
...  

2009 ◽  
Vol 07 (02) ◽  
pp. 573-586 ◽  
Author(s):  
KE-XIANG HU ◽  
BAI-QI JIN

We study the teleportation of the entangled state in quantum dots system coupled by a single-mode cavity field. By the use of the single-photon detection, spin measurement and Faraday rotation in QDs-cavity system, we perform a teleportation of tripartite GHZ-Like state encoded in the electron spins of a three-quantum-dot system. The success probability of the scheme can reach unity if the cavities are switchable to choice the appropriate Faraday rotation angle. The scheme of the teleportation can be easily generalized to an N-quantum-dot system.


2015 ◽  
Vol 30 (23) ◽  
pp. 1550109 ◽  
Author(s):  
Hong-Chun Yuan ◽  
Zhen Wang ◽  
Qin-Miao Chen ◽  
Xiao-Ming Dou

In this paper, using Wigner function (WF) method in phase space, we re-investigate micro–macro entanglement of a single-photon entangled state after one-sided amplification and de-amplification proposed by Simon’s group, and discuss the effects of the amplification and the loss. For the input–output process, we first build the relation between the input WF and the output WF. Next, the analytical expression of the output WF is derived related to the factors of the amplification and the loss. Finally, based on the above results, using the trace rule we also obtain the exact expressions of the detected probability and concurrence to quantify micro–macro entanglement, and analyze numerically the results. The results show that it is possible to detect micro–macro photon-number entanglement for reasonable values of photon loss.


2018 ◽  
Vol 17 (3) ◽  
Author(s):  
Dan-Dan Wang ◽  
Yu-Yu Jin ◽  
Sheng-Xian Qin ◽  
Hao Zu ◽  
Lan Zhou ◽  
...  

Author(s):  
Duncan G. Steel

Chapter 15 derived the fundamental theory and eigenstates for the quantized radiation field and then showed how the quantum vacuum gives rise to spontaneous emission. This chapter now goes more deeply into the meaning and implications of the quantized field. The polarization of a photon can be used as a qubit and the photonic qubit is called a flying qubit. It enables transmission of information from one node to another. Spontaneous emission is shown to enable creation of an entangled state between a photonic qubit and the spin of an electron. Spontaneous emission can also degrade the performance of some device designs and in other devices it can enhance performance such as for a single photon emitter. In this we show how to engineer the vacuum to control spontaneous emission.


2012 ◽  
Vol 86 (3) ◽  
Author(s):  
ShengLi Zhang ◽  
Song Yang ◽  
XuBo Zou ◽  
BaoSen Shi ◽  
GuangCan Guo

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