An open-source FPGA control architecture for solid-state spin-photon interfaces
Abstract
Scalable quantum networks require quantum interfaces that coherently connect stationary matter qubits with flying photonic qubits. In solid-state defect platforms, such interfaces require coordinated optical excitation, microwave spin control, photon detection, and feedback with nanosecond-level timing, while conventional instrument-based control systems become increasingly difficult to scale as experimental protocols grow in complexity. Here we present an open-source FPGA control architecture for solid-state spin–photon interface experiments. Built on the Quantum Instrumentation Control Kit (QICK), the platform extends the existing FPGA overlay by integrating a programmable multi-channel single-photon counter, enabling photon-count–centric experiment execution while preserving compatibility with the QICK software ecosystem. This architecture integrates time-gated single-photon detection with synchronized RF, microwave, and digital control within a unified hardware environment. Using single nitrogen-vacancy (NV) centers in diamond, we experimentally validate the platform through microwave spin manipulation, resonant optical control, automated measurement routines, and time-bin–encoded spin–photon correlation protocols relevant to quantum networking. These results establish an extensible and experimentally validated control framework for solid-state spin–photon interfaces, with clear potential to accelerate the development of scalable quantum-network nodes.
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Authors: Jae-Pil Park, Changhoon Park, Minseok Jeon, Yong Soo Lee, Yeeun Choi, Yong-gwon Kim, Nu‐Ri Park, Il‐Young Kim, Seok‐Kyun Son, Chulki Kim, Seung-Woo Jeon, Sang-Wook Han, Dongyeon Daniel Kang
Institutions: Korea University, Korea Institute of Science and Technology, Korea University of Science and Technology, Kyung Hee University, Korea Institute of Science & Technology Information