Development of a chemometric method for the analysis of Sudan III-IV dyes adulteration in chili powder using UV-visible spectroscopy data

Md Faizul Islam, M. N. Uddin, A. A. Rana, M. M. Karim
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引用次数: 3

Abstract

Chili powder is a globally traded commodity and one of the most important parts of regular diet of the people of Bangladesh. It is reported that chili power has been adulterated by Sudan III-IV dyes since 2003. A simple, fast and cost effective method for the identification of Sudan dyes (III and IV) present in chili powder was proposed here and the method was based on the characterization of UV-visible spectral data using artificial neural network (ANN). Artificial neural network (ANN) was developed for the simultaneous assay of chili powder adulterated with Sudan III-IV. 47 standard mixture solutions were prepared using orthogonal experimental design (OED) to build a calibration data set. UV-visible spectra of these mixtures were obtained between 200 and 800 nm at 1 nm interval. The results of the artificial neural network were compared with that of other two calibration techniques namely, principal component regression (PCR) and partial least square regression (PLSR). ANN shows better prediction efficiencies comparing with PCR and PLSR. Prediction by ANN on the basis of spectroscopic data is 85% for chili powder, 70% for Sudan III and 60% for Sudan IV in terms of coefficient of determination (R2 ). Six different branded chili powders collected from the local market, and were measured by using the proposed method. It was found that no samples contained Sudan III-IV. So, the proposed method can be easily used in the quality control of any chili powder adulterated with Sudan IIIIV dyes as an alternative analysis tool.
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建立了用紫外可见光谱分析辣椒粉中苏丹ⅲ-ⅳ染料掺假的化学计量方法
辣椒粉是一种全球贸易商品,也是孟加拉国人民日常饮食中最重要的部分之一。据报道,自2003年以来,辣椒粉一直被掺入苏丹III-IV染料。本文提出了一种基于紫外可见光谱数据表征的人工神经网络(ANN)方法,用于辣椒粉中苏丹红染料(III和IV)的简单、快速、经济的鉴别方法。建立了人工神经网络(ANN)同时测定苏丹红3 ~ 4掺杂辣椒粉的方法。采用正交试验设计(OED)制备了47种标准混合溶液,建立了校准数据集。这些混合物的紫外可见光谱在200 ~ 800 nm之间,间隔1 nm。将人工神经网络的校正结果与主成分回归(PCR)和偏最小二乘回归(PLSR)两种校正方法进行了比较。与PCR和PLSR相比,人工神经网络的预测效率更高。在光谱数据的基础上,人工神经网络预测辣椒粉的决定系数(R2)为85%,苏丹ⅲ为70%,苏丹IV为60%。从当地市场收集了六种不同品牌的辣椒粉,并使用所提出的方法进行了测量。发现没有样品含有苏丹III-IV。因此,该方法可作为一种替代分析工具,方便地用于任何掺入苏丹红ⅲ、ⅲ、ⅳ染料的辣椒粉的质量控制。
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