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Updated: Jul 4, 2026

Molecular Entanglement and Electrospinnability of Biopolymers
Published on: September 3, 2014
Multipartite entanglement among single spins in diamond
P Neumann1, N Mizuochi, F Rempp
13.Physikalisches Institut, Universität Stuttgart, Pfaffenwaldring 57, D-70550 Stuttgart, Germany.
Researchers created robust bipartite- and tripartite-entangled quantum states using 13C nuclei in diamond at room temperature. These high-quality quantum correlations persist for milliseconds, enabling advanced quantum operations.
Area of Science:
- Quantum physics
- Materials science
- Quantum information science
Background:
- Practical quantum technology requires robust entanglement at room temperature.
- Developing stable entangled states is crucial for quantum computing and communication.
Purpose of the Study:
- To demonstrate the creation of bipartite- and tripartite-entangled quantum states.
- To achieve high-quality entanglement at room temperature using a specific quantum register.
Main Methods:
- Utilizing individual 13C nuclei within a diamond lattice as a quantum register.
- Controlling nuclear spins via hyperfine coupling to a nitrogen-vacancy defect center's electron.
- Characterizing quantum correlations and their persistence over time.
Main Results:
- Successfully created bipartite- and tripartite-entangled quantum states.
- Achieved high-quality quantum correlations.
- Demonstrated entanglement persistence on a millisecond timescale at room temperature.
Conclusions:
- Robust room-temperature entanglement is achievable in a small quantum register of 13C nuclei.
- The demonstrated entanglement quality and duration are suitable for sophisticated quantum operations.
- This work advances the development of practical quantum technologies.
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