Dynamically Enhanced Two-Photon Spectroscopy
arXiv:2411.05670 · doi:10.1103/PhysRevLett.134.163601
Abstract
A novel quantum control protocol utilizing two-photon processes with trigonometric pulse modulation is developed, enabling the intermediate state population's dynamic elimination (DE). The proposed DE technique excels at single-photon resonance in contrast to the well-known adiabatic elimination (AE) regime, which requires large single-photon detuning and strong pulses. The DE approach outperforms AE in efficiency and exhibits enhanced resilience to one-photon detuning since the key control parameter, the effective two-photon Rabi frequency, inversely proportional to the modulation frequency, does not depend on the one-photon detuning. The comprehensive analysis of population transfer and Ramsey interferometry demonstrates the protocol's superiority, achieving enhanced signal-to-noise ratios and higher fidelities with respect to existing two-photon methods.
References in corpus (10)
- Frequency ratio of the Th nuclear isomeric transition and the Sr atomic clock
- Efficient coherent internal state transfer in trapped ions using Stimulated Raman Adiabatic Passage
- Remote entanglement via adiabatic passage using a tunably-dissipative quantum communication system
- Atom Interferometry with Floquet Atom Optics
- Fast and Robust Geometric Two-Qubit Gates for Superconducting Qubits and beyond
- Dicke State Generation and Extreme Spin Squeezing via Rapid Adiabatic Passage
- Topological transitions in quantum jump dynamics: Hidden exceptional points
- Robust Quantum Control via Multipath Interference for Thousandfold Phase Amplification in a Resonant Atom Interferometer
- Adiabatic rapid passage two-photon excitation of a Rydberg atom
- Two-photon-transition superadiabatic passage in an nitrogen-vacancy center in diamond