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Unscrambling Entanglement through a Complex Medium

1 Pith paper cite this work. Polarity classification is still indexing.

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abstract

The transfer of quantum information through a noisy environment is a central challenge in the fields of quantum communication, imaging and nanophotonics. In particular, high-dimensional quantum states of light enable quantum networks with significantly higher information capacities and noise robustness as compared with qubits. However, although qubit entanglement has been distributed over large distances through free space and fibre, the transport of high-dimensional entanglement is hindered by the complexity of the channel, which encompasses effects such as free-space turbulence or mode mixing in multimode waveguides. Here, we demonstrate the transport of six-dimensional spatial-mode entanglement through a 2-m-long, commercial multimode fibre with 84.4% fidelity. We show how the entanglement can itself be used to measure the transmission matrix of the complex medium, allowing the recovery of quantum correlations that were initially lost. Using a unique property of entangled states, the medium is rendered transparent to entanglement by carefully 'scrambling' the photon that did not enter it, rather than unscrambling the photon that did. Our work overcomes a primary challenge in the fields of quantum communication and imaging, and opens a new pathway towards the control of complex scattering processes in the quantum regime.

fields

quant-ph 1

years

2019 1

verdicts

CONDITIONAL 1

representative citing papers

Is high-dimensional photonic entanglement robust to noise?

quant-ph · 2019-08-23 · conditional · novelty 6.0

Separating the entanglement dimension k from the Hilbert space dimension d reduces the signal-to-noise ratio needed to certify k-dimensional entanglement, with an optimal d near 2.41k that can cut detector efficiency requirements by orders of magnitude.

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Showing 1 of 1 citing paper.

  • Is high-dimensional photonic entanglement robust to noise? quant-ph · 2019-08-23 · conditional · none · ref 23 · internal anchor

    Separating the entanglement dimension k from the Hilbert space dimension d reduces the signal-to-noise ratio needed to certify k-dimensional entanglement, with an optimal d near 2.41k that can cut detector efficiency requirements by orders of magnitude.