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Robust optical polarization of nuclear spin baths using Hamiltonian engineering of nitrogen-vacancy center quantum dynamics

机译:利用氮空位中心量子动力学的哈密顿工程对核自旋浴进行稳健的光偏振

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Dynamic nuclear polarization (DNP) is an important technique that uses polarization transfer from electron to nuclear spins to achieve nuclear hyperpolarization. Combining efficient DNP with optically polarized nitrogen-vacancy (NV) centers offers promising opportunities for novel technological applications, including nanoscale nuclear magnetic resonance spectroscopy of liquids, hyperpolarized nanodiamonds as magnetic resonance imaging contrast agents, and the initialization of nuclear spin–based diamond quantum simulators. However, none of the current realizations of polarization transfer are simultaneously robust and sufficiently efficient, making the realization of the applications extremely challenging. We introduce the concept of systematically designing polarization sequences by Hamiltonian engineering, resulting in polarization sequences that are robust and fast. We theoretically derive sequences and experimentally demonstrate that they are capable of efficient polarization transfer from optically polarized NV centers in diamond to the surrounding 13C nuclear spin bath even in the presence of control errors, making the abovementioned novel applications possible.
机译:动态核极化(DNP)是一项重要的技术,利用从电子到核自旋的极化转移来实现核超极化。将有效的DNP与光学极化的氮空位(NV)中心相结合,为新颖的技术应用提供了有希望的机会,包括液体的纳米级核磁共振波谱,用作磁共振成像造影剂的超极化纳米金刚石以及基于核自旋的金刚石量子模拟器的初始化。然而,极化转移的当前实现都没有同时稳定和有效的,这使得应用的实现极具挑战性。我们介绍了通过哈密顿工程学系统设计极化序列的概念,从而使极化序列既健壮又快速。我们从理论上推导了序列,并通过实验证明了即使在存在控制误差的情况下,它们也能够有效地将偏振光从金刚石中的NV中心转移至周围的13C核自旋浴,从而使上述新颖的应用成为可能。

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