Achieving Heisenberg scaling by probe-ancilla interaction in quantum metrology
arXiv:2407.16880 · doi:10.1103/PhysRevA.110.062406
Abstract
The Heisenberg scaling is an ultimate precision limit of parameter estimation allowed by the principles of quantum mechanics, with no counterpart in the classical realm, and has been a long-pursued goal in quantum metrology. It has been known that interactions between the probes can help reach the Heisenberg scaling without entanglement. In this paper, we show that interactions between the probes and the additional dimensions of an ancillary system may also increase the precision of parameter estimation to surpass the standard quantum limit and attain the Heisenberg scaling without entanglement, if the measurement scheme is properly designed. The quantum Fisher information exhibits periodic patterns over the evolution time, implying the existence of optimal time points for measurements that can maximize the quantum Fisher information. By implementing optimizations over the Hamiltonian, the initial states of the probes and the ancillary system, the interaction strength, and the time points for measurements, our protocol achieves the Heisenberg scaling for the parameter of the probe Hamiltonian, in terms of both evolution time and probe number. Our protocol features two aspects: (i) the Heisenberg scaling can be achieved by a product state of the probes and (ii) mere local measurement on the ancilla is sufficient, both of which reduce the quantum resources and the implementation complexity to achieve the Heisenberg scaling. The paper is concluded by the investigation of the effects of noise on this protocol.
12 pages, 3 figures. Typos corrected, close to the published version
References in corpus (18)
- 14-qubit entanglement: creation and coherence
- Quantum metrology from a quantum information science perspective
- Controlling the spontaneous emission of a superconducting transmon qubit
- Spectral signatures of many-body localization with interacting photons
- Generalized Limits for Single-Parameter Quantum Estimation
- Quantum Metrology for Gravitational Wave Astronomy
- Using entanglement against noise in quantum metrology
- Quantum Metrology: Dynamics vs. Entanglement
- Deterministic multi-qubit entanglement in a quantum network
- Dephasing of a superconducting flux qubit
- Adiabatic Mach-Zehnder Interferometry on A Quantized Bose-Josephson Junction
- Qubit metrology and decoherence
- Quantum-limited metrology with product states
- Assessment of error variation in high-fidelity two-qubit gates in silicon
- Fundamental Limits of Classical and Quantum Imaging
- Low-temperature quantum thermometry boosted by coherence generation
- Approaching Heisenberg-scalable thermometry with built-in robustness against noise
- On the Optimal Choice of Spin-Squeezed States for Detecting and Characterizing a Quantum Process
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- Precision limit under weak coupling with an ancillary qubit