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P1中心电子自旋团簇在Ib型钻石中普遍存在。

P1 Center Electron Spin Clusters Are Prevalent in Type Ib Diamonds.

作者信息

Bussandri Santiago, Shimon Daphna, Equbal Asif, Ren Yuhang, Takahashi Susumu, Ramanathan Chandrasekhar, Han Songi

机构信息

Department of Chemistry and Biochemistry, University of California, Santa Barbara, Santa Barbara, California 93106, United States.

Institute of Chemistry, The Hebrew University of Jerusalem, Edmond J. Safra, Givat Ram, Jerusalem 9190401, Israel.

出版信息

J Am Chem Soc. 2024 Feb 28;146(8):5088-5099. doi: 10.1021/jacs.3c06705. Epub 2023 Dec 19.

Abstract

Understanding the spatial distribution of the P1 centers is crucial for diamond-based sensors and quantum devices. P1 centers serve as polarization sources for dynamic nuclear polarization (DNP) quantum sensing and play a significant role in the relaxation of nitrogen vacancy (NV) centers. Additionally, the distribution of NV centers correlates with the distribution of P1 centers, as NV centers are formed through the conversion of P1 centers. We utilized DNP and pulsed electron paramagnetic resonance (EPR) techniques that revealed strong clustering of a significant population of P1 centers that exhibit exchange coupling and produce asymmetric line shapes. The C DNP frequency profile at a high magnetic field revealed a pattern that requires an asymmetric EPR line shape of the P1 clusters with electron-electron (e-e) coupling strengths exceeding the C nuclear Larmor frequency. EPR and DNP characterization at high magnetic fields was necessary to resolve energy contributions from different e-e couplings. We employed a two-frequency pump-probe pulsed electron double resonance technique to show cross-talk between the isolated and clustered P1 centers. This finding implies that the clustered P1 centers affect all of the P1 populations. Direct observation of clustered P1 centers and their asymmetric line shape offers a novel and crucial insight into understanding magnetic noise sources for quantum information applications of diamonds and for designing diamond-based polarizing agents with optimized DNP efficiency for C and other nuclear spins of analytes. We propose that room temperature C DNP at a high field, achievable through straightforward modifications to existing solution-state NMR systems, is a potent tool for evaluating and controlling diamond defects.

摘要

了解P1中心的空间分布对于基于金刚石的传感器和量子器件至关重要。P1中心作为动态核极化(DNP)量子传感的极化源,在氮空位(NV)中心的弛豫过程中起着重要作用。此外,NV中心的分布与P1中心的分布相关,因为NV中心是通过P1中心的转化形成的。我们利用DNP和脉冲电子顺磁共振(EPR)技术,揭示了大量表现出交换耦合并产生不对称线形的P1中心的强烈聚集。高磁场下的C DNP频率分布揭示了一种模式,该模式要求P1簇的EPR线形不对称,且电子-电子(e-e)耦合强度超过C核拉莫尔频率。高磁场下的EPR和DNP表征对于解析不同e-e耦合的能量贡献是必要的。我们采用双频泵浦-探测脉冲电子双共振技术来展示孤立的和聚集的P1中心之间的串扰。这一发现意味着聚集的P1中心会影响所有的P1群体。对聚集的P1中心及其不对称线形的直接观察为理解金刚石量子信息应用中的磁噪声源以及设计具有优化的C和其他分析物核自旋DNP效率的基于金刚石的极化剂提供了新颖且关键的见解。我们提出,通过对现有溶液态核磁共振系统进行直接修改可实现的高场室温C DNP,是评估和控制金刚石缺陷的有力工具。

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