Experimental Heat-Bath Cooling of Spins
Gilles Brassard, Yuval Elias, Jos\'e M. Fernandez, Haggai Gilboa,, Jonathan A. Jones, Tal Mor, Yossi Weinstein, Li Xiao

TL;DR
This paper demonstrates heat-bath cooling of nuclear spins using NMR, achieving polarization levels that surpass Shannon entropy limits through selective reset steps, with experimental validation on standard liquid-state NMR systems.
Contribution
The study provides the first experimental implementation of heat-bath cooling that surpasses Shannon entropy bounds in spin systems, using commercially available NMR techniques.
Findings
Polarizations exceeded Shannon's entropy bound
Successful cooling of entire spin-system achieved
Experimental validation on standard NMR spectrometers
Abstract
Algorithmic cooling (AC) is a method to purify quantum systems, such as ensembles of nuclear spins, or cold atoms in an optical lattice. When applied to spins, AC produces ensembles of highly polarized spins, which enhance the signal strength in nuclear magnetic resonance (NMR). According to this cooling approach, spin-half nuclei in a constant magnetic field are considered as bits, or more precisely, quantum bits, in a known probability distribution. Algorithmic steps on these bits are then translated into specially designed NMR pulse sequences using common NMR quantum computation tools. The cooling of spins is achieved by alternately combining reversible, entropy-preserving manipulations (borrowed from data compression algorithms) with , the transfer of entropy from selected spins to the environment. In theory, applying algorithmic cooling to…
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Taxonomy
TopicsAdvanced NMR Techniques and Applications · Atomic and Subatomic Physics Research · NMR spectroscopy and applications
