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通过 B(1) 场不均匀性抑制探针背景信号。

Suppression of probe background signals via B(1) field inhomogeneity.

机构信息

Ernest Orlando Lawrence Berkeley National Laboratory, Materials Sciences Division, Berkeley, CA 94720, USA.

出版信息

J Magn Reson. 2011 Apr;209(2):300-5. doi: 10.1016/j.jmr.2011.01.023. Epub 2011 Feb 3.

Abstract

A new approach combining a long pulse with the DEPTH sequence (Cory and Ritchey, Journal of Magnetic Resonance, 1988) greatly improves the efficiency for suppressing probe background signals arising from spinning modules. By applying a long initial excitation pulse in the DEPTH sequence, instead of a π/2 pulse, the inhomogeneous B(1) fields outside the coil can dephase the background coherence in the nutation frame. The initial long pulse and the following two consecutive EXORCYCLE π pulses function complementarily and prove most effective in removing background signals from both strong and weak B₁ fields. Experimentally, the length of the long pulse can be optimized around odd multiples of the π/2 pulse, depending on the individual probe design, to preserve signals inside the coil while minimizing those from probe hardware. This method extends the applicability of the DEPTH sequence to probes with small differences in B₁ field strength between the inside and outside of the coil, and can readily combine with well-developed double resonance experiments for quantitative measurement. In general, spin systems with weak internal interactions are required to attain efficient and uniform excitation for powder samples, and the principles to determine the applicability are discussed qualitatively in terms of the relative strength of spin interactions, r.f. power and spinning rate.

摘要

一种将长脉冲与 DEPTH 序列相结合的新方法(Cory 和 Ritchey,《磁共振杂志》,1988 年)极大地提高了抑制来自旋转模块的探针背景信号的效率。通过在 DEPTH 序列中施加长的初始激发脉冲而不是 π/2 脉冲,线圈外的非均匀 B(1)场可以使进动框架中的背景相干相消。初始长脉冲和随后的两个连续 EXORCYCLE π 脉冲互补作用,并在去除强和弱 B₁场的背景信号方面最有效。在实验中,长脉冲的长度可以根据单个探头的设计在奇数倍的 π/2 脉冲周围进行优化,以在最小化探头硬件信号的同时保留线圈内的信号。该方法将 DEPTH 序列的适用性扩展到线圈内外 B₁场强度差异较小的探头,并可以与成熟的双共振实验相结合,用于定量测量。一般来说,需要具有弱内部相互作用的自旋系统来实现粉末样品的高效和均匀激发,并且可以根据自旋相互作用、rf 功率和旋转速度的相对强度定性地讨论确定适用性的原理。

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