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The development of laser cooling coupled with the ability to trap atoms and ions in electromagnetic fields, has revolutionised atomic and optical physics, leading to the development of atomic clocks, high-resolution spectroscopy and applications in quantum simulation and processing.
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2010
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Barker, P. F. and Shneider, M. N. Cavity cooling of an optically trapped nanoparticle
2010
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Romero-Isart, O., Juan, M. L., Quidant, R. and Cirac, J. I. Toward quantum superposition of living organisms
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Gieseler, J., Novotny, L. and Quidant, R. Thermal nonlinearities in a nanomechanical oscillator
2013
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Arndt, M. and Hornberger, K. Testing the limits of quantum mechanical superpositions
2014
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Gieseler, J., Quidant, R., Dellago, C. and Novotny, L. Dynamic relaxation of a levitated nanoparticle from a non-equilibrium steady state
2014
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Li, T, Kheifets, S. and Raizen, M. G. Millikelvin cooling of an optically trapped microsphere in vacuum
2011
Cited alongside, same era.
Romero-Isart, O
2011
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Gieseler, J., Deutsch, B., Quidant, R. and Novotny, L. Subkelvin Parametric Feedback Cooling of a Laser-Trapped Nanoparticle
2012
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Bochmann, J., Vainsencher, A., Awschalom, D. D. and Cleland, A. N. Nanomechanical coupling between microwave and optical photons
2013
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Millen, J., Deesuwan, T., Barker, P. F. and Anders, J. Nanoscale temperature measurements using non-equilibrium Brownian dynamics of a levitated nanosphere
2014
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2014
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Silanpää, M. A. and Hakonen, P. Optomechanics: Hardware for a quantum network
2014
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