Please use this identifier to cite or link to this item: https://doi.org/10.1126/science.1211914
Title: Entangling macroscopic diamonds at room temperature
Authors: Lee, K.C.
Sprague, M.R.
Sussman, B.J.
Nunn, J.
Langford, N.K.
Jin, X.-M.
Champion, T.
Michelberger, P.
Reim, K.F.
England, D.
Jaksch, D. 
Walmsley, I.A.
Issue Date: 2-Dec-2011
Citation: Lee, K.C., Sprague, M.R., Sussman, B.J., Nunn, J., Langford, N.K., Jin, X.-M., Champion, T., Michelberger, P., Reim, K.F., England, D., Jaksch, D., Walmsley, I.A. (2011-12-02). Entangling macroscopic diamonds at room temperature. Science 334 (6060) : 1253-1256. ScholarBank@NUS Repository. https://doi.org/10.1126/science.1211914
Abstract: Quantum entanglement in the motion of macroscopic solid bodies has implications both for quantum technologies and foundational studies of the boundary between the quantum and classical worlds. Entanglement is usually fragile in room-temperature solids, owing to strong interactions both internally and with the noisy environment. We generated motional entanglement between vibrational states of two spatially separated, millimeter-sized diamonds at room temperature. By measuring strong nonclassical correlations between Raman-scattered photons, we showed that the quantum state of the diamonds has positive concurrence with 98% probability. Our results show that entanglement can persist in the classical context of moving macroscopic solids in ambient conditions.
Source Title: Science
URI: http://scholarbank.nus.edu.sg/handle/10635/112433
ISSN: 00368075
DOI: 10.1126/science.1211914
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