使用传统和量子级联激光基于红外光谱仪测量基于轮胎的微塑料
Cristina Román-Zas1, Borja Ferreiro1, Javier Terán-Baamonde1
1Grupo Química Analítica Aplicada (QANAP), Instituto Universitario de Medio Ambiente (IUMA), Universidade da Coruña, 15071 A Coruña, Spain.
Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy
|October 30, 2024
概括
本研究评估了用于分析轮胎磨损颗粒 (TWP) 的红外 (IR) 技术. 微透射IR对于20微米以下的TWPs最有效,为监测这种新出现的环境污染物提供了一种新方法.
科学领域:
- 环境科学 环境科学
- 分析化学 分析化学
- 材料科学 材料科学 材料科学
背景情况:
- 轮胎磨损颗粒 (TWPs) 构成潜在的环境风险.
- 缺乏可靠的分析方法来识别和描述TWP.
- 由于黑碳的散射,传统的红外技术对TWPs来说是不理想的.
研究的目的:
- 评估最合适的红外 (IR) 光谱技术,用于监测TWPs.
- 评估IR技术在区分轮胎类型方面的能力.
- 为新出现的污染物建立新的分析途径.
主要方法:
- 对汽车和卡车轮胎样本 (碎片和TWP) 的分析.
- 宏观减弱总反射率 (ATR),反射显微镜和基于量子级联激光的微反射率 (QCL-LDIR) 的比较.
- 化学测量方法 (PCA,分类树) 的应用,以区分轮胎.
主要成果:
- ATR为主要功能组提供了明确定义的光谱.
- 在TWPs上的反射显微镜由于噪声和散射而产生了有限的信息.
- 对于TWPs (<1mm),QCL-LDIR表现出优异的性能,通过提高分辨率和更快的分析,测量颗粒到20微米.
- 化学分析成功地将卡车轮胎与汽车轮胎区分开来.
结论:
- 微透射IR被介绍为一种用于分析TWPs到20μm的新技术.
- 传统的ATR适用于更大的微塑料分析.
- 这些IR技术为在环境矩阵中监测TWPs提供了新的可能性.
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