Kandrashkin Yu E
Zavoisky Physical-Technical Institute, FRC Kazan Scientific Center of RAS, 420029, Kazan, Russia.
J Magn Reson. 2024 Aug;365:107731. doi: 10.1016/j.jmr.2024.107731. Epub 2024 Jul 6.
The electron spin echo envelope modulation (ESEEM) technique is a direct method to probe the nuclear spin coherences induced by electron spin transitions. Recently, this approach was used to study an isotopically pure YSiO crystal doped with Yb ions, and the presence of the Fermi contact interaction was proposed to explain the frequency comb detected in the two-pulse ESEEM experiment [Solovarov N. K. et al. JETP Letters 115 (6): 362-67]. Here we simulate the Fourier images of the ESEEM data. The numerical analysis shows that the modulation is mainly due to the nuclear spin coherences induced by the dipole-dipole interactions. However, the correlation between the experimental and simulated data is better when the super-hyperfine interactions of the nearby yttrium nuclei have an additional isotropic contribution. The analysis of the rescaled X-band ESEEM spectra shows that for the EPR transitions at magnetic fields > 100 mT, the main contribution to the modulation comes from the oscillations of the individual nuclei and the effect of interference between coherences originating from several nuclei is not strong. Further experiments to distinguish the sources of the echo modulation are discussed.
电子自旋回波包络调制(ESEEM)技术是一种探测由电子自旋跃迁诱导的核自旋相干性的直接方法。最近,该方法被用于研究掺杂镱离子的同位素纯YSiO晶体,并提出费米接触相互作用的存在来解释在双脉冲ESEEM实验中检测到的频率梳[索洛瓦罗夫N.K.等人,《喷气推进实验室快报》115(6):362 - 67]。在此,我们模拟了ESEEM数据的傅里叶图像。数值分析表明,调制主要归因于偶极 - 偶极相互作用诱导的核自旋相干性。然而,当附近钇核的超超精细相互作用具有额外的各向同性贡献时,实验数据与模拟数据之间的相关性更好。对重新缩放的X波段ESEEM光谱的分析表明,对于磁场>100 mT时的EPR跃迁,调制的主要贡献来自单个核的振荡,并且源自几个核的相干性之间的干涉效应不强。文中讨论了进一步区分回波调制源的实验。