4.8 Article

Enhanced energy-constrained quantum communication over bosonic Gaussian channels

期刊

NATURE COMMUNICATIONS
卷 11, 期 1, 页码 -

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-020-14329-6

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资金

  1. Korea Foundation for Advanced Studies
  2. EPSRC via the UK Quantum Communications HUB [EP/M013472/1, EP/T001011/1]
  3. European Union [820466]
  4. ARL-CDQI [W911NF-15-2-0067, W911NF-18-2-0237]
  5. ARO [W911NF-18-1-0020, W911NF-18-1-0212]
  6. ARO MURI [W911NF-16-1-0349]
  7. AFOSR MURI [FA9550-15-10015]
  8. NSF [EFMA-1640959]
  9. Packard Foundation [2013-39273]
  10. EPSRC [EP/T001011/1, EP/M013472/1] Funding Source: UKRI

向作者/读者索取更多资源

Quantum communication is an important branch of quantum information science, promising unconditional security to classical communication and providing the building block of a future large-scale quantum network. Noise in realistic quantum communication channels imposes fundamental limits on the communication rates of various quantum communication tasks. It is therefore crucial to identify or bound the quantum capacities of a quantum channel. Here, we consider Gaussian channels that model energy loss and thermal noise errors in realistic optical and microwave communication channels and study their various quantum capacities in the energy-constrained scenario. We provide improved lower bounds to various energy-constrained quantum capacities of these fundamental channels and show that higher communication rates can be attained than previously believed. Specifically, we show that one can boost the transmission rates of quantum information and private classical information by using a correlated multi-mode thermal state instead of the single-mode thermal state of the same energy. The amount of information that a quantum channel can transmit is fundamentally bounded by the amount of noise in the channel. Here, the authors consider the realistic case with loss and thermal noise errors and prove that correlated multi-mode thermal states can achieve higher rates than single-mode ones.

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