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Spin squeezing in an ensemble of nitrogen–vacancy centres in diamond

/u/AngleAccomplished865
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⚡ Quantum Brief
Researchers achieved the first experimental demonstration of spin squeezing in a solid-state system using nitrogen-vacancy centers in diamond at room temperature, marking a breakthrough for practical quantum sensing. The team generated −0.50 ± 0.13 dB of squeezing below uncorrelated spin noise by leveraging native magnetic dipole interactions, overcoming longstanding challenges in solid-state spin control. A novel noise spectroscopy technique was developed to measure quantum projection noise without resolving spin distributions, enabling precise characterization of entangled states in disordered systems. To mitigate random defect positioning, researchers isolated a more ordered sub-ensemble of spins, demonstrating targeted entanglement generation in a previously uncontrollable solid-state environment. This advancement paves the way for compact, high-precision quantum sensors with real-world applications, harnessing macroscopic entanglement in optically active solid-state spins.
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https://www.nature.com/articles/s41586-025-09524-8 Possible outcome: next-generation quantum sensors that are powerful, compact, and ready for real-world use "Spin-squeezed states provide a seminal example of how the structure of quantum mechanical correlations can be controlled to produce metrologically useful entanglement1,2,3,4,5,6,7. These squeezed states have been demonstrated in a wide variety of quantum systems ranging from atoms in optical cavities to trapped ion crystals8,9,10,11,12,13,14,15,16. By contrast, despite their numerous advantages as practical sensors, spin ensembles in solid-state materials have yet to be controlled with sufficient precision to generate targeted entanglement such as spin squeezing. Here we report the experimental demonstration of spin squeezing in a solid-state spin system. Our experiments are performed on a strongly interacting ensemble of nitrogen–vacancy colour centres in diamond at room temperature, and squeezing (−0.50 ± 0.13 dB) below the noise of uncorrelated spins is generated by the native magnetic dipole–dipole interaction between nitrogen–vacancy centres. To generate and detect squeezing in a solid-state spin system, we overcome several challenges. First, we develop an approach, using interaction-enabled noise spectroscopy, to characterize the quantum projection noise in our system without directly resolving the spin probability distribution. Second, noting that the random positioning of spin defects severely limits the generation of spin squeezing, we implement a pair of strategies aimed at isolating the dynamics of a relatively ordered sub-ensemble of nitrogen–vacancy centres. Our results open the door to entanglement-enhanced metrology using macroscopic ensembles of optically active spins in solids." submitted by /u/AngleAccomplished865 [link] [comments]

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