论文标题
朝基于卫星的量子安全时间传输
Towards satellite-based quantum-secure time transfer
论文作者
论文摘要
远程时钟的高精度时间同步在基本科学和现实生活中起着重要作用。但是,当前的时间同步技术已被证明容易受到复杂的对手的攻击。根本上需要新的方法来牢固地分发高精度时间信息。在这里,我们建议基于自由空间中的双向量子密钥分布(QKD)的基于卫星的量子安全时间转移(QSTT)方案,并通过Micius量子卫星实验验证该方案的密钥技术。在QSTT中,将量子信号(例如,单个光子)用作时间传输和秘密钥匙生成的载体,提供量子增强的安全性,用于传输时间信号和时间信息。我们使用单光子级信号执行卫星至地面时间同步,并达到量子位错误率小于1%,时间数据速率为9 kHz,时间转移精度为30 ps。这些结果为增强的时间转移网络的基础架构提供了可能性,该网络的安全性来自量子物理学。
High-precision time synchronization for remote clocks plays an important role in fundamental science and real-life applications. However, the current time synchronization techniques have been shown to be vulnerable to sophisticated adversaries. There is a compelling need for fundamentally new methods to distribute high-precision time information securely. Here we propose a satellite-based quantum-secure time transfer (QSTT) scheme based on two-way quantum key distribution (QKD) in free-space, and experimentally verify the key technologies of the scheme via the Micius quantum satellite. In QSTT, a quantum signal (e.g., single photon) is used as the carrier for both the time transfer and the secret-key generation, offering quantum-enhanced security for transferring time signal and time information. We perform a satellite-to-ground time synchronization using single-photon-level signals and achieve a quantum bit error rate of less than 1%, a time data rate of 9 kHz and a time-transfer precision of 30 ps. These results offer possibilities towards an enhanced infrastructure of time-transfer network, whose security stems from quantum physics.