The development of precise atomic clocks plays an increasingly important role in modern society. Shared timing information constitutes a key resource for navigation with a direct correspondence between timing accuracy and precision in applications such as the Global Positioning System. By combining precision metrology and quantum networks, we propose a quantum, cooperative protocol for operating a network of geographically remote optical atomic clocks. Using nonlocal entangled states, we demonstrate an optimal utilization of global resources, and show that such a network can be operated near the fundamental precision limit set by quantum theory. Furthermore, the internal structure of the network, combined with quantum communication techniqu...
A method is proposed to employ entangled and squeezed light for determining the position of a party ...
Quantum physics allows a new approach to information processing. A grand challenge is the realizatio...
Abstract Quantum networks providing shared entanglement over a mesh of quantum nodes will revolution...
We propose a satellite-based scheme to perform clock synchronization between ground stations spread ...
The current frontier of our understanding of the physical universe is dominated by quantum phenomena...
Quantum sensors are used for precision timekeeping, field sensing, and quantum communication. Compar...
Optical atomic clocks are our most precise tools to measure time and frequency. They enable precisio...
We propose a protocol for creating a fully entangled Greenberger-Horne-Zeilinger-type state of neutr...
The ability to measure, hold and distribute time with high precision and accuracy is a foundational ...
Accurate remote clock synchronization is the backbone of applications such as high-accuracy satellit...
We show that a quantum clock can not be teleported without prior synchronization between sender and ...
Timing requirements for long-range quantum networking are driven by the necessity of synchronizing t...
We propose a quantum method to judge whether two spatially separated clocks have been synchronized w...
Quantum networks provide opportunities and challenges across a range of intellectual and technical f...
Atomic clocks known as optical clocks are more accurate and stable than current timekeepers. Two qua...
A method is proposed to employ entangled and squeezed light for determining the position of a party ...
Quantum physics allows a new approach to information processing. A grand challenge is the realizatio...
Abstract Quantum networks providing shared entanglement over a mesh of quantum nodes will revolution...
We propose a satellite-based scheme to perform clock synchronization between ground stations spread ...
The current frontier of our understanding of the physical universe is dominated by quantum phenomena...
Quantum sensors are used for precision timekeeping, field sensing, and quantum communication. Compar...
Optical atomic clocks are our most precise tools to measure time and frequency. They enable precisio...
We propose a protocol for creating a fully entangled Greenberger-Horne-Zeilinger-type state of neutr...
The ability to measure, hold and distribute time with high precision and accuracy is a foundational ...
Accurate remote clock synchronization is the backbone of applications such as high-accuracy satellit...
We show that a quantum clock can not be teleported without prior synchronization between sender and ...
Timing requirements for long-range quantum networking are driven by the necessity of synchronizing t...
We propose a quantum method to judge whether two spatially separated clocks have been synchronized w...
Quantum networks provide opportunities and challenges across a range of intellectual and technical f...
Atomic clocks known as optical clocks are more accurate and stable than current timekeepers. Two qua...
A method is proposed to employ entangled and squeezed light for determining the position of a party ...
Quantum physics allows a new approach to information processing. A grand challenge is the realizatio...
Abstract Quantum networks providing shared entanglement over a mesh of quantum nodes will revolution...