Continuous variable free space quantum communication

Author(s):  
Gerd Leuchs ◽  
Christoph Marquardt
2018 ◽  
Vol 26 (24) ◽  
pp. 31106 ◽  
Author(s):  
Vladyslav C. Usenko ◽  
Christian Peuntinger ◽  
Bettina Heim ◽  
Kevin Günthner ◽  
Ivan Derkach ◽  
...  

2019 ◽  
Vol 21 (12) ◽  
pp. 123036 ◽  
Author(s):  
László Ruppert ◽  
Christian Peuntinger ◽  
Bettina Heim ◽  
Kevin Günthner ◽  
Vladyslav C Usenko ◽  
...  

2021 ◽  
Vol 10 (1) ◽  
Author(s):  
Shihan Sajeed ◽  
Thomas Jennewein

AbstractQuantum channels in free-space, an essential prerequisite for fundamental tests of quantum mechanics and quantum technologies in open space, have so far been based on direct line-of-sight because the predominant approaches for photon-encoding, including polarization and spatial modes, are not compatible with randomly scattered photons. Here we demonstrate a novel approach to transfer and recover quantum coherence from scattered, non-line-of-sight photons analyzed in a multimode and imaging interferometer for time-bins, combined with photon detection based on a 8 × 8 single-photon-detector-array. The observed time-bin visibility for scattered photons remained at a high 95% over a wide scattering angle range of −450 to +450, while the individual pixels in the detector array resolve or track an image in its field of view of ca. 0.5°. Using our method, we demonstrate the viability of two novel applications. Firstly, using scattered photons as an indirect channel for quantum communication thereby enabling non-line-of-sight quantum communication with background suppression, and secondly, using the combined arrival time and quantum coherence to enhance the contrast of low-light imaging and laser ranging under high background light. We believe our method will instigate new lines for research and development on applying photon coherence from scattered signals to quantum sensing, imaging, and communication in free-space environments.


2021 ◽  
Author(s):  
Natasa Pavlovic Tucakovic ◽  
Uday Chandrashekara ◽  
Andrej Krzic ◽  
Fabian Steinlechner

2020 ◽  
Vol 40 (2) ◽  
pp. 0227001
Author(s):  
刘涛 Liu Tao ◽  
朱聪 Zhu Cong ◽  
孙春阳 Sun Chunyang ◽  
房新新 Fang Xinxin ◽  
王平平 Wang Pingping

2020 ◽  
Vol 40 (7) ◽  
pp. 0727001
Author(s):  
张秀再 Zhang Xiuzai ◽  
徐茜 Xu Xi ◽  
刘邦宇 Liu Bangyu

2019 ◽  
Vol 198 ◽  
pp. 00007 ◽  
Author(s):  
Alejandro Ocampos-Guillén ◽  
Natalia Denisenko ◽  
Verónica Fernández-Mármol

Optimising the interconnection between free-space and fibre links will be necessary for future quantum communication networks. In daylight free-space quantum communication based on direct detection, the required Field Of View (FoV) of the receiver system needs to be minimised to reduce solar background noise coupling into the detectors. Reducing the FoV requires minimising beam wander effects caused by atmospheric turbulence through active optics. We implement a fine tracking system designed to correct tip and tilt wavefront aberrations, using two feedback loops; each of them consisting of a quadrant detector and a fast steering mirror for stabilising the beam in the whole optical axis of the receiver. We test the performance of the tracking system with different optical fibres in order to evaluate the reduction in the quantum bit error rate (QBER) caused by solar background noise. A reduction of 75% for single mode fibre was obtained, and 45% reduction for a 25 µm core diameter fibre, both cases for strong turbulence (Cn2~10-12 – 10-13 m-2/3) and 100 m propagating channel. These results look promising for enabling free-space Quantum Key Distribution (QKD) in wireless networks for realistic/adverse conditions such as daylight and strong turbulent regimes.


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