
TL;DR
Quantum resource theories provide a unified framework for quantifying and utilizing quantum phenomena like entanglement and quantum reference frames, revealing deep structural similarities across different resource types.
Contribution
This paper reviews the general framework of quantum resource theories, highlighting their structural features, operational tasks, and resource measures, with illustrative examples.
Findings
Different QRTs share unexpected structural similarities.
Resource measures and convertibility exhibit common patterns across theories.
QRTs enable practical applications of quantum properties beyond fundamental interest.
Abstract
Quantum resource theories (QRTs) offer a highly versatile and powerful framework for studying different phenomena in quantum physics. From quantum entanglement to quantum computation, resource theories can be used to quantify a desirable quantum effect, develop new protocols for its detection, and identify processes that optimize its use for a given application. Particularly, QRTs revolutionize the way we think about familiar properties of physical systems like entanglement, elevating them from just being interesting from a fundamental point of view to being useful in performing practical tasks. The basic methodology of a general QRT involves partitioning all quantum states into two groups, one consisting of free states and the other consisting of resource states. Accompanying the set of free states is a collection of free quantum operations arising from natural restrictions on physical…
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