Horst Yannik, Bitachon Bertold Ian, Kulmer Laurenz, Brun Jannik, Blatter Tobias, Conan Jean-Marc, Montmerle-Bonnefois Aurélie, Montri Joseph, Sorrente Béatrice, Lim Caroline B, Védrenne Nicolas, Matter Daniel, Pommarel Loann, Baeuerle Benedikt, Leuthold Juerg
ETH Zurich, Institute of Electromagnetic Fields (IEF), Gloriastrasse 35, 8092, Zürich, Switzerland.
ONERA, DOTA, Paris Saclay University, F-92322, Châtillon, France.
Light Sci Appl. 2023 Jun 20;12(1):153. doi: 10.1038/s41377-023-01201-7.
Free-space optical (FSO) communication technologies constitute a solution to cope with the bandwidth demand of future satellite-ground networks. They may overcome the RF bottleneck and attain data rates in the order of Tbit/s with only a handful of ground stations. Here, we demonstrate single-carrier Tbit/s line-rate transmission over a free-space channel of 53.42 km between the Jungfraujoch mountain top (3700 m) in the Swiss Alps and the Zimmerwald Observatory (895 m) near the city of Bern, achieving net-rates of up to 0.94 Tbit/s. With this scenario a satellite-ground feeder link is mimicked under turbulent conditions. Despite adverse conditions high throughput was achieved by employing a full adaptive optics system to correct the distorted wavefront of the channel and by using polarization-multiplexed high-order complex modulation formats. It was found that adaptive optics does not distort the reception of coherent modulation formats. Also, we introduce constellation modulation - a new four-dimensional BPSK (4D-BPSK) modulation format as a technique to transmit high data rates under lowest SNR. This way we show 53 km FSO transmission of 13.3 Gbit/s and 210 Gbit/s with as little as 4.3 and 7.8 photons per bit, respectively, at a bit-error ratio of 1 ∙ 10. The experiments show that advanced coherent modulation coding in combination with full adaptive optical filtering are proper means to make next-generation Tbit/s satellite communications practical.
自由空间光(FSO)通信技术为应对未来卫星-地面网络的带宽需求提供了一种解决方案。它们可以克服射频瓶颈,仅需少数地面站就能实现Tbit/s量级的数据速率。在此,我们展示了在瑞士阿尔卑斯山少女峰山顶(3700米)与伯尔尼市附近的齐默瓦尔德天文台(895米)之间53.42公里的自由空间信道上进行单载波Tbit/s线速率传输,实现了高达0.94 Tbit/s的净速率。通过这种场景,模拟了湍流条件下的卫星-地面馈线链路。尽管条件不利,但通过采用全自适应光学系统校正信道的畸变波前,并使用偏振复用高阶复调制格式,仍实现了高吞吐量。研究发现,自适应光学不会扭曲相干调制格式的接收。此外,我们引入了星座调制——一种新的四维BPSK(4D-BPSK)调制格式,作为在最低信噪比下传输高数据速率的技术。通过这种方式,我们展示了在误码率为1∙10时,分别以低至每比特4.3和7.8个光子的情况下实现53公里13.3 Gbit/s和210 Gbit/s的FSO传输。实验表明,先进的相干调制编码与全自适应光学滤波相结合是使下一代Tbit/s卫星通信切实可行的合适手段。