Approaching optimal entangling collective measurements on quantum
computing platforms
- URL: http://arxiv.org/abs/2205.15358v2
- Date: Wed, 12 Jul 2023 05:02:46 GMT
- Title: Approaching optimal entangling collective measurements on quantum
computing platforms
- Authors: Lorcan O. Conlon, Tobias Vogl, Christian D. Marciniak, Ivan Pogorelov,
Simon K. Yung, Falk Eilenberger, Dominic W. Berry, Fabiana S. Santana, Rainer
Blatt, Thomas Monz, Ping Koy Lam, Syed M. Assad
- Abstract summary: We show theoretically optimal single- and two-copy collective measurements for simultaneously estimating two non-commuting qubit rotations.
This allows us to implement quantum-enhanced sensing, for which the metrological gain persists for high levels of decoherence.
- Score: 0.3665899982351484
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Entanglement is a fundamental feature of quantum mechanics and holds great
promise for enhancing metrology and communications. Much of the focus of
quantum metrology so far has been on generating highly entangled quantum states
that offer better sensitivity, per resource, than what can be achieved
classically. However, to reach the ultimate limits in multi-parameter quantum
metrology and quantum information processing tasks, collective measurements,
which generate entanglement between multiple copies of the quantum state, are
necessary. Here, we experimentally demonstrate theoretically optimal single-
and two-copy collective measurements for simultaneously estimating two
non-commuting qubit rotations. This allows us to implement quantum-enhanced
sensing, for which the metrological gain persists for high levels of
decoherence, and to draw fundamental insights about the interpretation of the
uncertainty principle. We implement our optimal measurements on
superconducting, trapped-ion and photonic systems, providing an indication of
how future quantum-enhanced sensing networks may look.
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