Detecting Single Microwave Photons with NV Centers in Diamond

Materials (Basel). 2023 Apr 21;16(8):3274. doi: 10.3390/ma16083274.

Abstract

We propose a scheme for detecting single microwave photons using dipole-induced transparency (DIT) in an optical cavity resonantly coupled to a spin-selective transition of a negatively charged nitrogen-vacancy (NV-) defect in diamond crystal lattices. In this scheme, the microwave photons control the interaction of the optical cavity with the NV- center by addressing the spin state of the defect. The spin, in turn, is measured with high fidelity by counting the number of reflected photons when the cavity is probed by resonant laser light. To evaluate the performance of the proposed scheme, we derive the governing master equation and solve it through both direct integration and the Monte Carlo approach. Using these numerical simulations, we then investigate the effects of different parameters on the detection performance and find their corresponding optimized values. Our results indicate that detection efficiencies approaching 90% and fidelities exceeding 90% could be achieved when using realistic optical and microwave cavity parameters.

Keywords: Monte Carlo simulations; dipole-induced transparency; nitrogen-vacancy centers; single microwave photon detection.

Grants and funding

Canada First Research Excellence Fund-Transformative Quantum Technologies (CFREF-TQT); IQC Graduate Research Studentship; Laflamme and Gregson Award for Women in Quantum Information Science.