Institute for Quantum Computing, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada and Department of Physics and Astronomy, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada.
Institute for Quantum Computing, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada and Department of Chemistry, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada and Perimeter Institute for Theoretical Physics, Waterloo, Ontario N2L 2Y5, Canada.
Phys Rev Lett. 2014 Feb 7;112(5):050501. doi: 10.1103/PhysRevLett.112.050501. Epub 2014 Feb 5.
We describe how sideband cooling techniques may be applied to large spin ensembles in magnetic resonance. Using the Tavis-Cummings model in the presence of a Rabi drive, we solve a Markovian master equation describing the joint spin-cavity dynamics to derive cooling rates as a function of ensemble size. Our calculations indicate that the coupled angular momentum subspaces of a spin ensemble containing roughly 10(11) electron spins may be polarized in a time many orders of magnitude shorter than the typical thermal relaxation time. The described techniques should permit efficient removal of entropy for spin-based quantum information processors and fast polarization of spin samples. The proposed application of a standard technique in quantum optics to magnetic resonance also serves to reinforce the connection between the two fields, which has recently begun to be explored in further detail due to the development of hybrid designs for manufacturing noise-resilient quantum devices.
我们描述了边带冷却技术如何应用于磁共振中的大自旋系统。利用存在拉比驱动的 Tavis-Cummings 模型,我们求解了一个描述联合自旋-腔动力学的马尔可夫主方程,以推导出冷却速率作为集合大小的函数。我们的计算表明,包含大约 10(11)个电子自旋的自旋系统的耦合角动量子空间可以在比典型热弛豫时间短得多的时间内极化。所描述的技术应该允许有效地去除基于自旋的量子信息处理器中的熵,并快速极化自旋样本。在磁共振中应用量子光学中的标准技术也有助于加强这两个领域之间的联系,由于制造抗噪量子器件的混合设计的发展,这种联系最近开始被进一步详细探索。