预处理对生物固体中微塑料的光热红外光谱表征的影响

IF 11.3
Journal of hazardous materials Pub Date : 2025-09-15 Epub Date: 2025-08-04 DOI:10.1016/j.jhazmat.2025.139448
Crislaine Bertoldi, Milda Pucetaite, Maria C Hansson, Carl Troein, Martijn van Praagh
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引用次数: 0

摘要

生物固体中的微塑料(MPs)作为土壤改良剂受到越来越多的关注。本研究的目的是通过不同的光谱技术优化样品制备的形态和化学分析,提高MPs在复杂生物固体基质中的表征。我们比较了Fenton氧化(F)、Fenton +十二烷基硫酸钠(SDS)和Fenton +纤维素酶(FE)的提取工艺。我们沿螺旋形状进行了部分颗粒样品计数,对应于样品面积的56% %,以及总颗粒计数。采用亚微米光热红外(O-PTIR)光谱进行了化学表征,并将结果与常用的拉曼和傅里叶变换红外吸收微光谱技术(µ-FTIR)进行了比较。与其他预处理方法相比,我们的FE方案产生了略高的总样品质量去除率(97 %±0.3 %)。两种方法之间的总MPs计数没有显着差异,表明整个过滤器的均匀分布,并支持在螺旋方法中仅使用一半过滤器进行可靠的量化。与拉曼和µ-FTIR相比,O-PTIR的高空间分辨率(低至0.5 µm)和没有光谱伪像,能够准确识别细纤维(2 µm宽)和小颗粒(~ 5 µm)。单频O-PTIR成像显示了与周围环境明显分离的明确定义的颗粒,突出了该技术在颗粒识别方面的潜力。研究结果强调了将有效的样品预处理与高分辨率化学分析相结合的必要性,以提高对环境中塑料命运的了解,并支持未来政策制定或生物固体中塑料含量的监管更新。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of pre-treatment on characterization of microplastics in biosolids via optical photothermal infrared spectroscopy.

Microplastics (MPs) in biosolids used as soil amendments are of growing concern. The purpose of this study was to improve the characterization of MPs in complex biosolid matrices by optimizing sample preparation for morphological and chemical analyses with different spectroscopic techniques. We compared extraction procedures involving Fenton oxidation (F), Fenton plus sodium dodecyl sulfate (SDS), and Fenton plus cellulase (FE). We performed partial particle sample counting along with a helical shape, corresponding to 56 % of sample area, and total particle counting. Chemical characterization was performed using sub-micron optical-photothermal infrared (O-PTIR) spectroscopy, and the results were compared with those obtained via commonly employed Raman and Fourier transform infrared absorption microspectroscopy technique (µ-FTIR). Our FE protocol yielded a slightly higher total sample mass removal (97 %±0.3 %) compared to other pre-treatment methods. No significant difference was observed in the total MPs count between the two approaches, indicating a homogeneous distribution across the filter and supporting reliable quantification using only half the filter in the helical method. O-PTIR's high spatial resolution (down to 0.5 µm) and absence of spectral artefacts compared to Raman and µ-FTIR enabled accurate identification of fine fibers (2 µm wide) and small particles (∼5 µm). Single-frequency O-PTIR imaging revealed well-defined particles clearly separated from their surroundings, highlighting the technique's potential for particle identification. The findings highlight the need to combine effective sample pre-treatment with high-resolution chemical analysis to improve understanding of plastic fate in the environment and supporting future policy development or regulatory updates on plastic content in biosolids.

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