Self-Tuning Transmitter for Quantum Key Distribution Using Machine Intelligence
arXiv:2210.08379 · doi:10.1103/PhysRevApplied.18.034087
Abstract
The development and performance of quantum technologies heavily relies on the properties of the quantum states, which often require careful optimization of the driving conditions of all underlying components. In quantum key distribution (QKD), optical injection locking (OIL) of pulsed lasers has recently been shown as a promising technique to realize high-speed quantum transmitters with efficient system design. However, due to the complex underlying laser dynamics, tuning such laser system is both a challenging and time-consuming task. Here, we experimentally demonstrate an OIL-based QKD transmitter that can be automatically tuned to its optimum operating state by employing a genetic algorithm. Starting with minimal knowledge of the laser operating parameters, the phase coherence and the quantum bit error rate of the system are optimized autonomously to a level matching the state of the art.
References in corpus (9)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Satellite-to-ground quantum key distribution
- Implementation of a 46-node quantum metropolitan area network
- A Modulator-Free Quantum Key Distribution Transmitter Chip
- Advanced Laser Technology for Quantum Communications (Tutorial Review)
- Parameters optimization and real-time calibration of Measurement-Device-Independent Quantum Key Distribution Network based on Back Propagation Artificial Neural Network
- Interference of short optical pulses from independent gain-switched laser diodes for quantum secure communications
- Modulator-free coherent-one-way quantum key distribution
- Direct phase modulation via optical injection: theoretical study