Quantification of elemental sulfur in pulping liquors by thin-layer chromatography

IF 1.1 4区 化学 Q4 CHEMISTRY, ANALYTICAL
Stefan Böhmdorfer, Jakob Santner, Antje Potthast, Thomas Rosenau
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引用次数: 0

Abstract

The inorganic sulfur compounds that are used as pulping agents in the production of pulp and paper from wood are converted into a variety of sulfur species during processing. How sulfur is allocated to different streams and products in a pulp mill is relevant for efficient mill operation and to avoid harmful emissions. Pulping liquors are a highly challenging and potentially destructive sample matrix. We describe a thin-layer chromatographic method for the direct quantification of elemental sulfur in pulping liquors. The liquors are spotted (not sprayed!) directly onto the plate without prior purification, extraction, or workup. Sulfur is then eluted with cyclo-hexane and detected by densitometry at 285 nm or fluorescence quenching close to the solvent front. The method was validated for a calibrated range from 60 to 2000 ng sulfur on plate. The limit of detection was determined at 20 ng; measurement uncertainty was about 20%. With this method, 27–54 mg/L elemental sulfur were found in Kraft pulping liquors, which corresponds to 0.24–0.48% of the total sulfur in these samples.

Abstract Image

用薄层色谱法定量制浆液中的硫元素
在以木材为原料生产纸浆和纸张的过程中,用作打浆剂的无机硫化合物会在加工过程中转化成各种硫磺。如何将硫分配到纸浆厂的不同流体和产品中,关系到纸浆厂的高效运行和避免有害气体的排放。制浆液是一种极具挑战性和潜在破坏性的样品基质。我们介绍了一种直接量化制浆液中硫元素的薄层色谱法。无需事先净化、萃取或处理,直接在薄层色谱板上点样(而非喷淋!)。然后用环己烷洗脱硫元素,并在 285 纳米波长处通过密度计或靠近溶剂前沿的荧光淬灭进行检测。该方法在平板上 60 至 2000 纳克硫的校准范围内进行了验证。检测限为 20 毫微克;测量不确定性约为 20%。使用该方法在牛皮纸打浆液中发现了 27-54 mg/L 的元素硫,相当于这些样品中总硫的 0.24-0.48%。
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来源期刊
CiteScore
2.20
自引率
18.80%
发文量
66
审稿时长
>12 weeks
期刊介绍: JPC - Journal of Planar Chromatography - Modern TLC is an international journal devoted exclusively to the publication of research papers on analytical and preparative planar chromatography. The journal covers all fields of planar chromatography, on all kinds of stationary phase (paper, layer, gel) and with various modes of migration of the mobile phase (capillary action or forced flow).
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