Burning and graphitization of optically levitated nanodiamonds in vacuum

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Abstract

A nitrogen-vacancy (NV-) centre in a nanodiamond, levitated in high vacuum, has recently been proposed as a probe for demonstrating mesoscopic centre-of-mass superpositions and for testing quantum gravity. Here, we study the behaviour of optically levitated nanodiamonds containing NV- centres at sub-atmospheric pressures and show that while they burn in air, this can be prevented by replacing the air with nitrogen. However, in nitrogen the nanodiamonds graphitize below ∼10 mB. Exploiting the Brownian motion of a levitated nanodiamond, we extract its internal temperature (Ti) and find that it would be detrimental to the NV- centre's spin coherence time. These values of Ti make it clear that the diamond is not melting, contradicting a recent suggestion. Additionally, using the measured damping rate of a levitated nanoparticle at a given pressure, we propose a new way of determining its size.

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Rahman, A. T. M. A., Frangeskou, A. C., Kim, M. S., Bose, S., Morley, G. W., & Barker, P. F. (2016). Burning and graphitization of optically levitated nanodiamonds in vacuum. Scientific Reports, 6. https://doi.org/10.1038/srep21633

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