Accurately analyzing NMR and MRI diffusion experimental data relies on the theoretical expression used for signal attenuation or phase evolution. In a complex system, the encountered magnetic field is often inhomogeneous, which may be represented by a linear combination of z^n gradient fields, where n is the order. Additionally, the higher the order of the nonlinear gradient field, the more sensitive the phase variances are to differences in diffusion coefficients and delay times. Hence, studying higher-order fields has both theoretical and experimental importance, but this is a challenge for traditional methods. The recently proposed phase diffusion method proposed a general way to overcome the challenge. This method is used and demonstrated in detail in this paper to determine the phase evolution in a quadric field (n = 4). Three different types of phase evolution in the quadric gradient field are obtained. Moreover, a general signal attenuation expression is proposed to describe the signal attenuation for spin diffusion from the origin of the nonlinear gradient field. This approximation is based on the short gradient pulse (SGP) approximation but is extended to include the finite gradient pulse width (FGPW) effect by using the mean square phase. Compared to other forms of signal attenuation, such as Gaussian and Lorentzian, this method covers a broader range of attenuation, from small to relatively large. Additionally, this attenuation is easier to understand than the Mittag-Leffler function-based attenuation. The results, particularly the phase and signal attenuation expressions obtained in this paper, potentially advance PFG diffusion research in nonlinear gradient fields in NMR and MRI.
翻译:准确分析核磁共振(NMR)与磁共振成像(MRI)扩散实验数据依赖于用于描述信号衰减或相位演化的理论表达式。在复杂系统中,所遇到的磁场往往是非均匀的,可表示为z^n梯度场的线性组合,其中n为阶数。此外,非线性梯度场的阶数越高,相位方差对扩散系数和延迟时间差异的敏感性越强。因此,研究高阶场具有理论与实验双重意义,但这对传统方法构成挑战。近期提出的相位扩散方法为解决该难题提供了通用途径。本文详细运用并演示了该方法,以确定四阶场(n=4)中的相位演化,获得了四阶梯度场中三种不同类型的相位演化结果。此外,本文提出了一种通用的信号衰减表达式,用于描述自旋扩散从非线性梯度场原点出发的信号衰减。该近似基于短梯度脉冲(SGP)近似,但通过引入均方相位扩展至包含有限梯度脉冲宽度(FGPW)效应。与高斯型、洛伦兹型等其他信号衰减形式相比,本方法覆盖了从小到相对较大范围的更广泛衰减情形,且比基于Mittag-Leffler函数的衰减形式更易于理解。本文获得的相位与信号衰减表达式结果,有望推动核磁共振与磁共振成像中非线性梯度场下的脉冲场梯度(PFG)扩散研究。