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Magnetic nanoparticles: An indicator of health risks related to anthropogenic airborne particulate matter

机译:磁性纳米粒子:与人为空气传播颗粒物相关的健康风险指标

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摘要

Due to their small dimensions, airborne particles are able to penetrate through inhalation into many human organs, from the lungs to the cardiovascular system and the brain, which can threaten our health. This work establishes a novel approach of collecting quantitative data regarding the fraction, the composition and the size distribution of combustion-emitted particulate matter through the magnetic characterization and analysis of samples received by common air pollution monitoring. To this end, SQUID magnetometry measurements were carried out for samples from urban and suburban areas in Thessaloniki, the second largest city of Greece, taking into consideration the seasonal and weekly variation of airborne particles levels as determined by occurring traffic and meteorological conditions. The level of estimated magnetically-responding atmospheric particulate matter was at least 0.5 % wt. of the collected samples, mostly being present in the form of ultrafine particles with nuclei sizes of approximately 14 nm and their aggregates. The estimated quantities of magnetic particulate matter show maximum values during autumn months (0.8 % wt.) when increased commuting takes place, appearing higher in the city center by up to 50% than those in suburban areas. In combination with high-resolution transmission electron imaging and elemental analysis, it was found that Fe3O4 and similar ferrites, some of them attached to heavy metals (Co, Cr), are the dominant magnetic contributors arising from anthropogenic high-temperature processes, e.g. due to traffic emissions. Importantly, nasal cytologic samples collected from residents of both central and suburban areas showed same pattern in what concerns magnetic behavior, thus verifying the critical role of nanosized magnetic particles in the assessment of air pollution threats. Despite the inherent statistical limitations of our study, such findings also indicate the potential transmission of infectious pathogens by means of pollution-derived nanoparticles into the respiratory system of the human body. (C) 2020 Elsevier Ltd. All rights reserved.
机译:由于它们的小尺寸,空气中颗粒能够通过吸入许多人器官,从肺部到心血管系统和大脑,这可能会威胁到我们的健康。该工作建立了通过磁性污染监测所接收的样品的磁性表征和分析来收集有关颗粒,组合物和燃烧发射颗粒物质的尺寸分布的定量数据的新方法。为此,考虑到通过发生的交通和气象条件确定的季节性和每周变化,对城市和郊区的样本进行了鱿鱼磁体测量,以考虑到空气传播粒子水平的季节性和每周变化。估计的磁响应大气颗粒物质的水平至少为0.5%wt。在收集的样品中,主要以超细颗粒的形式存在,其中核尺寸约为14nm及其聚集体。估计数量的磁性颗粒物在秋季月份(0.8%wt)期间显示最大值(0.8%wt。)在增加的通勤时,市中心在城市中心出现高达50%,比郊区。结合高分辨率透射电子成像和元素分析,发现Fe3O4和类似的铁氧体,其中一些连接到重金属(Co,Cr),是由人为高温方法产生的主要磁力源,例如,由于交通排放。重要的是,从中枢和郊区和郊区的居民收集的鼻细胞学样本在涉及磁性行为的情况下表现出相同的模式,从而验证纳米磁性颗粒在空气污染威胁评估中的关键作用。尽管我们研究的固有统计局限性,但这些发现还通过污染衍生的纳米颗粒进入人体呼吸系统的潜在传播感染病原体。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Environmental Pollution》 |2021年第2期|116309.1-116309.9|共9页
  • 作者单位

    Aristotle Univ Thessaloniki Dept Chem Engn Thessaloniki 54124 Greece;

    CSIC Inst Ciencia Mat Barcelona Bellaterra 08193 Spain;

    Ecoresources PC Giannitson Santaroza Str 15-17 Thessaloniki 54627 Greece;

    Aristotle Univ Thessaloniki Gen Hosp Papageorgiou Acad Otorhinolaryngol Dept 2 Thessaloniki 56403 Greece;

    Aristotle Univ Thessaloniki Gen Hosp Papageorgiou Acad Otorhinolaryngol Dept 2 Thessaloniki 56403 Greece;

    Aristotle Univ Thessaloniki Dept Phys Thessaloniki 54124 Greece;

    Aristotle Univ Thessaloniki Dept Chem Engn Thessaloniki 54124 Greece;

    Ecoresources PC Giannitson Santaroza Str 15-17 Thessaloniki 54627 Greece|Aristotle Univ Thessaloniki Dept Phys Thessaloniki 54124 Greece;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Particulate matter; Iron-bearing; Nanoparticles; Magnetism; Rhinoscopy;

    机译:颗粒物质;铁轴承;纳米粒子;磁性;鼻镜;
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