论文标题

交互系统中的动态脱钩:用于信号增强超极化读数的应用

Dynamical decoupling in interacting systems: applications to signal-enhanced hyperpolarized readout

论文作者

Ajoy, A., Nirodi, R., Sarkar, A., Reshetikhin, P., Druga, E., Akkiraju, A., McAllister, M., Maineri, G., Le, S., Lin, A., Souza, A. M., Meriles, C. A., Gilbert, B., Suter, D., Reimer, J. A., Pines, A.

论文摘要

保持连贯性的方法广泛影响所有量子信息处理和计量应用。动态解耦方法通过在嘈杂的环境中保护Qubits来实现这一目标,但通常被限制为量子位本身无相互作用的极限。在这里,我们考虑了替代方案,其中Qubit间耦合与与环境的互动相同的顺序。我们提出并演示了一种多脉冲协议,该方案通过适当的哈密顿工程旋转耦合来保护横向自旋状态,同时抑制量子上的倾向噪声。我们在钻石中的13C核自旋矩阵上进行基准测试,偶极相互耦合并嵌入在嘈杂的电子自旋浴中,并通过光学泵送的NV中心过极。我们在室温下观察到有效状态寿命为13c nuclei $ t_2^{\ prime} \ $ 2.5s,超过4700倍以上的传统$ t_2^{\ ast} $免费感应感应衰减。在应用的量子控制过程中,对旋转不断询问,导致13c NMR线变窄,由于寿命扩展,SNR的$ 500倍提升。在常规7T NMR上,$> 10^{11} $加速了与超极化的旋转询问一起。这项工作提出了与在各种实验平台中应用的耦合量子系统动态解耦的策略。

Methods that preserve coherence broadly impact all quantum information processing and metrology applications. Dynamical decoupling methods accomplish this by protecting qubits in noisy environments but are typically constrained to the limit where the qubits themselves are non-interacting. Here we consider the alternate regime wherein the inter-qubit couplings are of the same order as dephasing interactions with the environment. We propose and demonstrate a multi-pulse protocol that protects transverse spin states by suitably Hamiltonian engineering the inter-spin coupling while simultaneously suppressing dephasing noise on the qubits. We benchmark the method on 13C nuclear spin qubits in diamond, dipolar coupled to each other and embedded in a noisy electronic spin bath, and hyperpolarized via optically pumped NV centers. We observe effective state lifetimes of 13C nuclei $T_2^{\prime}\approx$2.5s at room temperature, an extension of over 4700-fold over the conventional $T_2^{\ast}$ free induction decay. The spins are continuously interrogated during the applied quantum control, resulting in 13C NMR line narrowing and an $>$500-fold boost in SNR due to the lifetime extension. Together with hyperpolarization spin interrogation is accelerated by $>10^{11}$ over conventional 7T NMR. This work suggests strategies for the dynamical decoupling of coupled qubit systems with applications in a variety of experimental platforms.

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