Mantey Sara T, Silva Nuno A, Pinto Armando N, Muga Nelson J
Opt Express. 2025 Mar 10;33(5):11745-11756. doi: 10.1364/OE.550025.
The ability to efficiently align the transmitter and receiver of a polarization-based Quantum Key Distribution (QKD) system at initialization and during the exchange of qubits is critical for its correct operation, otherwise resulting in a reduction of the secret key rate. We address this issue by implementing a deterministic polarization compensation method based on the reversal operator of polarization variations. The working principle of this reversal operator is based on Quantum Bit Error Rate (QBER) measurements and their mapping on the Poincaré sphere, enabling fast tracking and compensation of polarization misalignments. Our experimental implementation demonstrates that this method allows for an accurate alignment of the polarization coding and measurement basis using only three QBER measurements. The results confirm that the reversal operator method is exceptionally time-efficient when compared to the widely used compensation methods, such as gradient-based algorithms, requiring at least 5× fewer QBER measurements.
在初始化阶段以及量子比特交换过程中,能够高效地对准基于偏振的量子密钥分发(QKD)系统的发射机和接收机,对于其正确运行至关重要,否则会导致密钥率降低。我们通过实现一种基于偏振变化反转算子的确定性偏振补偿方法来解决这个问题。该反转算子的工作原理基于量子误码率(QBER)测量及其在庞加莱球上的映射,能够快速跟踪和补偿偏振失准。我们的实验实现表明,该方法仅使用三次QBER测量就能够实现偏振编码和测量基的精确对准。结果证实,与广泛使用的补偿方法(如基于梯度的算法)相比,反转算子方法的时间效率极高,所需的QBER测量至少少5倍。