Ruf H
Max-Planck-Institut für Biophysik, Frankfurt, Federal Republic of Germany.
Biophys J. 1989 Jul;56(1):67-78. doi: 10.1016/S0006-3495(89)82652-9.
This paper presents a study of the influence of normalization errors on size distributions obtained from the analysis of intensity fluctuations by photon correlation spectroscopy. The effects of these errors are demonstrated by means of computer-generated autocorrelation functions simulating light scattered from a monomodal Schulz distribution of small, spherical, unilamellar lipid vesicles. The calculations show that even small errors in the baseline, modifying the data upon normalization systematically, will cause serious errors in the estimated size distribution. As it turns out this is due to the peculiar characteristics of normalization errors in data of the first order autocorrelation function. The errors introduced there are described in parts by functions of the delay time having positive exponents. Such components are not considered in the integral equations commonly used to analyze the measured data. The error's property to be a function of delay time in turn enables us to obtain the relative baseline error from the inversion of the data. The new method for its determination is described in some detail. Here, it has been realized with a modified version of the size distribution algorithm CONTIN.
本文介绍了归一化误差对通过光子相关光谱分析强度波动获得的尺寸分布的影响研究。通过计算机生成的自相关函数来演示这些误差的影响,该自相关函数模拟了从小的、球形的、单分子层脂质囊泡的单峰舒尔茨分布散射的光。计算表明,即使基线中存在小误差,在归一化时系统地修改数据,也会在估计的尺寸分布中导致严重误差。事实证明,这是由于一阶自相关函数数据中归一化误差的特殊特性。在那里引入的误差部分由具有正指数的延迟时间函数描述。在通常用于分析测量数据的积分方程中不考虑此类分量。误差作为延迟时间函数的特性反过来使我们能够从数据反演中获得相对基线误差。详细描述了确定它的新方法。在这里,它是通过尺寸分布算法CONTIN的修改版本实现的。