Characterizing quantum instruments: from non-demolition measurements to quantum error correction
Roman Stricker, Davide Vodola, Alexander Erhard, Lukas Postler,, Michael Meth, Martin Ringbauer, Philipp Schindler, Rainer Blatt, Markus, M\"uller, Thomas Monz

TL;DR
This paper introduces a comprehensive method to characterize quantum instruments, capturing detailed dynamics and failure modes, which is crucial for improving quantum error correction and quantum information processing.
Contribution
It presents a general recipe for characterizing quantum instruments experimentally and analyzes their failure modes, enhancing understanding beyond traditional quantum channel descriptions.
Findings
Revealed unexpected failure modes in a quantum instrument used for qubit loss detection.
Demonstrated the impact of failure modes on quantum error correction performance.
Highlighted the inadequacy of simple noise models for faulty quantum instruments.
Abstract
In quantum information processing quantum operations are often processed alongside measurements which result in classical data. Due to the information gain of classical measurement outputs non-unitary dynamical processes can take place on the system, for which common quantum channel descriptions fail to describe the time evolution. Quantum measurements are correctly treated by means of so-called quantum instruments capturing both classical outputs and post-measurement quantum states. Here we present a general recipe to characterize quantum instruments alongside its experimental implementation and analysis. Thereby, the full dynamics of a quantum instrument can be captured, exhibiting details of the quantum dynamics that would be overlooked with common tomography techniques. For illustration, we apply our characterization technique to a quantum instrument used for the detection of qubit…
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Taxonomy
TopicsAdvancements in Semiconductor Devices and Circuit Design · Integrated Circuits and Semiconductor Failure Analysis · Semiconductor materials and devices
