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电子顺磁共振中的宽带自旋回波和宽带筛选器

Broadband spin echoes and broadband SIFTER in EPR.

作者信息

Schöps Philipp, Spindler Philipp E, Marko Andriy, Prisner Thomas F

机构信息

Institut für physikalische und theoretische Chemie, Goethe Universität Frankfurt, Max von Laue Straße 7, 60438 Frankfurt am Main, Germany.

Institut für physikalische und theoretische Chemie, Goethe Universität Frankfurt, Max von Laue Straße 7, 60438 Frankfurt am Main, Germany.

出版信息

J Magn Reson. 2015 Jan;250:55-62. doi: 10.1016/j.jmr.2014.10.017. Epub 2014 Nov 26.

Abstract

Applications of broadband pulses for EPR have been reported for FID, echo detection and inversion pulses recently. Here we present a broadband Hahn, stimulated and refocused echo sequence derived from adiabatic pulses. The formation of echoes is accomplished by using variable chirp rates and pulse lengths. In all three broadband echo experiments the complete spectral shape of a nitroxide (about 70 Gauss at X-band frequency) could be recovered by Fourier transformation of the quadrature detected echo signals. Such broadband echoes provide an exciting opportunity to optimize pulse sequences where a full excitation of the spectrum is mandatory for an optimum performance. We applied our pulses to the SIFTER (single frequency technique for refocusing dipolar couplings) experiment, a solid echo based pulse sequence to measure the dipolar coupling between two unpaired electron spins. By employing our broadband Hahn echo sequence on a nitroxide biradical we could achieve an artifact free dipolar evolution time trace in the SIFTER experiment with 95% modulation depth at X-band frequency and of 10% modulation depth at Q-band frequency.

摘要

最近已有关于宽带脉冲在电子顺磁共振(EPR)中用于自由感应衰减(FID)、回波检测和反转脉冲的应用报道。在此,我们展示一种源自绝热脉冲的宽带哈恩(Hahn)、受激和重聚焦回波序列。回波的形成通过使用可变啁啾率和脉冲长度来实现。在所有这三个宽带回波实验中,通过对正交检测到的回波信号进行傅里叶变换,可恢复氮氧化物(在X波段频率下约为70高斯)的完整光谱形状。这种宽带回波为优化脉冲序列提供了一个令人兴奋的机会,在这些脉冲序列中,光谱的完全激发对于最佳性能是必不可少的。我们将我们的脉冲应用于SIFTER(用于重聚焦偶极耦合的单频技术)实验,这是一种基于固体回波的脉冲序列,用于测量两个未配对电子自旋之间的偶极耦合。通过在氮氧化物双自由基上采用我们的宽带哈恩回波序列,我们能够在SIFTER实验中实现无伪影的偶极演化时间迹线,在X波段频率下调制深度为95%,在Q波段频率下调制深度为10%。

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