A general attenuator ??,? is a bosonic quantum channel that acts by combining the input with a fixed environment state ? in a beam splitter of transmissivity ?. If ? is a thermal state, the resulting channel is a thermal attenuator, whose quantum capacity vanishes for ?<=1/2. We study the quantum capacity of these objects for generic ?, proving a number of unexpected results. Most notably, we show that for any arbitrary value of ?>0 there exists a suitable single-mode state ?(?) such that the quantum capacity of ??,?(?) is larger than a universal constant c>0. Our result holds even when we fix an energy constraint at the input of the channel, and implies that quantum communication at a constant rate is possible even in the limit of arbitrarily low transmissivity, provided that the environment state is appropriately controlled. We also find examples of states ? such that the quantum capacity of ??,? is not monotonic in ?. These findings may have implications for the study of communication lines running across integrated optical circuits, of which general attenuators provide natural models.

Bosonic Quantum Communication across Arbitrarily High Loss Channels

Giovannetti V;
2020

Abstract

A general attenuator ??,? is a bosonic quantum channel that acts by combining the input with a fixed environment state ? in a beam splitter of transmissivity ?. If ? is a thermal state, the resulting channel is a thermal attenuator, whose quantum capacity vanishes for ?<=1/2. We study the quantum capacity of these objects for generic ?, proving a number of unexpected results. Most notably, we show that for any arbitrary value of ?>0 there exists a suitable single-mode state ?(?) such that the quantum capacity of ??,?(?) is larger than a universal constant c>0. Our result holds even when we fix an energy constraint at the input of the channel, and implies that quantum communication at a constant rate is possible even in the limit of arbitrarily low transmissivity, provided that the environment state is appropriately controlled. We also find examples of states ? such that the quantum capacity of ??,? is not monotonic in ?. These findings may have implications for the study of communication lines running across integrated optical circuits, of which general attenuators provide natural models.
2020
Istituto Nanoscienze - NANO
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/426634
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