Quantum sensing of weak electric and magnetic fields by coherent amplification of energy level shift effects
Nikolay V. Vitanov

TL;DR
This paper proposes a method for highly sensitive detection of weak electric and magnetic fields by coherently amplifying small energy level shifts in a qubit through repeated pulse sequences, enhancing measurement accuracy.
Contribution
It introduces a novel pulse sequence technique that amplifies energy level shifts, enabling rapid and precise quantum sensing without complex operations.
Findings
Sequences with alternating phases provide greater error amplification.
The method achieves high sensitivity to weak fields through phase-controlled pulse repetition.
Analytic estimates confirm improved detection capabilities using standard models.
Abstract
A method for measuring small energy level shifts in a qubit by coherent amplification of their effect is proposed. It is based on the repeated application of the same interaction pulse in two manners: with the same phase of each subsequent pulse, and with an alternating phase shift of (i.e. a minus sign) from pulse to pulse. Two specific types of pulses are considered: a resonant pulse and an adiabatic chirped pulse, both of which produce complete population inversion with high fidelity. In the presence of a weak ambient external electric or magnetic field, the ensuing Stark or Zeeman shift leads to an energy level shift and hence a static detuning. In both the resonant and adiabatic approaches, a small level shift does not alter the transition probability very much; however, it can significantly change the dynamical phases in the propagator. The repeated application of the…
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