Fortman Benjamin, Takahashi Susumu
Department of Chemistry , University of Southern California , Los Angeles , California 90089 , United States.
Department of Physics & Astronomy , University of Southern California , Los Angeles , California 90089 , United States.
J Phys Chem A. 2019 Jul 25;123(29):6350-6355. doi: 10.1021/acs.jpca.9b02445. Epub 2019 Jul 11.
Spectral analysis of electron spin resonance (ESR) is a powerful technique for various investigations including characterization of spin systems, measurements of spin concentration, and probing spin dynamics. The nitrogen-vacancy (NV) center in diamond is a promising magnetic sensor enabling improvement of ESR sensitivity to the level of a single spin. Therefore, understanding the nature of the NV-detected ESR (NV-ESR) spectrum is critical for applications to nanoscale ESR. Within this work, we investigate the linewidth of NV-ESR from single substitutional nitrogen centers (called P1 centers). NV-ESR is detected by a double electron-electron resonance (DEER) technique. By studying the dependence of the DEER excitation bandwidth on the NV-ESR linewidth, we find that the spectral resolution is improved significantly and eventually limited by inhomogeneous broadening of the detected P1 ESR. Moreover, we show that the NV-ESR linewidth can be as narrow as 0.3 MHz.
电子自旋共振(ESR)光谱分析是一种强大的技术,可用于各种研究,包括自旋系统的表征、自旋浓度的测量以及自旋动力学的探测。金刚石中的氮空位(NV)中心是一种很有前景的磁传感器,能够将ESR灵敏度提高到单个自旋的水平。因此,了解NV检测到的ESR(NV-ESR)光谱的性质对于纳米级ESR的应用至关重要。在这项工作中,我们研究了单个替代氮中心(称为P1中心)的NV-ESR线宽。通过双电子-电子共振(DEER)技术检测NV-ESR。通过研究DEER激发带宽对NV-ESR线宽的依赖性,我们发现光谱分辨率得到了显著提高,最终受到检测到的P1 ESR非均匀展宽的限制。此外,我们表明NV-ESR线宽可以窄至0.3 MHz。