Quantum illumination (QI) is a revolutionary photonic quantum sensing paradigm that enhances the sensitivity of photodetection in noisy and lossy environments. In this paper, we propose to use QI in a quantum backscatter communication (QBC), with the aim of increasing the receiver sensitivity beyond the limits of its classical counterpart. One of the practical challenges in microwave QI is the slow rate at which the entangled microwave modes can be generated. Here, we propose to mitigate this problem by using a multiple-input multiple-output antenna system to synthetically increase the number of efficiently- distinguishable modes in the QBC context.Peer reviewe
The field of propagating quantum microwaves is a relatively new area of research that is receiving i...
Quantum sensing based on entangled photon pairs is gradually establishing itself as a cornerstone in...
The field of propagating quantum microwaves is a relatively new area of research that is receiving i...
In this paper, we propose a novel quantum backscatter communications (QBC) protocol, inspired by the...
The recent advances in the field of microwave superconducting circuits open the way for a multitude ...
The recent advances in the field of microwave superconducting circuits open the way for a multitude ...
In quantum illumination (QI) the non-classical correlations between continuous variable (CV) entangl...
Backscattered signals are always obscured by the unavoidable channel noise. However, by exploiting q...
Quantum illumination (QI) is an entanglement-enhanced sensing system whose performance advantage ove...
Quantum illumination is a quantum-optical sensing technique in which an entangled source is exploite...
Quantum illumination is a sensing technique that employs entangled signal-idler beams to improve the...
Quantum sensing is a creative application of quantum technology which is opening new horizons in ord...
Quantum illumination uses entangled signal-idler photon pairs to boost the detection efficiency of l...
Quantum illumination is a quantum-optical sensing technique in which an entangled source is exploite...
Based on quantum illumination (QI) protocol, microwave quantum radar has been developed, which has a...
The field of propagating quantum microwaves is a relatively new area of research that is receiving i...
Quantum sensing based on entangled photon pairs is gradually establishing itself as a cornerstone in...
The field of propagating quantum microwaves is a relatively new area of research that is receiving i...
In this paper, we propose a novel quantum backscatter communications (QBC) protocol, inspired by the...
The recent advances in the field of microwave superconducting circuits open the way for a multitude ...
The recent advances in the field of microwave superconducting circuits open the way for a multitude ...
In quantum illumination (QI) the non-classical correlations between continuous variable (CV) entangl...
Backscattered signals are always obscured by the unavoidable channel noise. However, by exploiting q...
Quantum illumination (QI) is an entanglement-enhanced sensing system whose performance advantage ove...
Quantum illumination is a quantum-optical sensing technique in which an entangled source is exploite...
Quantum illumination is a sensing technique that employs entangled signal-idler beams to improve the...
Quantum sensing is a creative application of quantum technology which is opening new horizons in ord...
Quantum illumination uses entangled signal-idler photon pairs to boost the detection efficiency of l...
Quantum illumination is a quantum-optical sensing technique in which an entangled source is exploite...
Based on quantum illumination (QI) protocol, microwave quantum radar has been developed, which has a...
The field of propagating quantum microwaves is a relatively new area of research that is receiving i...
Quantum sensing based on entangled photon pairs is gradually establishing itself as a cornerstone in...
The field of propagating quantum microwaves is a relatively new area of research that is receiving i...