Yerong Li, Yingying Hong, Weiwei Zhang, Jianhui Wang
Abstract We theoretically propose a cyclic quantum engine in which a single-qubit working medium undergoes finite-time unitary strokes with adjustable durations, followed by a projective measurement and an outcome-dependent coherent pulse ( π or π /2 rotation). The protocol separates two independent control handles: the unitary driving speed τ dr , which governs nonadiabatic transitions and phase accumulation, and the measurement parameter θ , which sets the outcome probabilities and the magnitude of measurement-induced energy injection. Feedback functions solely through pulses without altering the stroke time. Including the measurement and erasure costs, we show that the coordinated tuning of τ dr and θ yields substantial and robust gains in terms of power and efficiency.