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双酚 A 的多相对流层臭氧化反应:环境表面的化学转化。

Multiphase Ozonolysis of Bisphenol A: Chemical Transformations on Surfaces in the Environment.

机构信息

Department of Chemistry, University of Toronto, 80 St. George Street, Toronto, Ontario M5S 3H6, Canada.

Air Quality Processes Research Section, Environment and Climate Change Canada, Toronto, Ontario M3H 5T4, Canada.

出版信息

Environ Sci Technol. 2024 Feb 27;58(8):3931-3941. doi: 10.1021/acs.est.3c08932. Epub 2024 Feb 13.

Abstract

High global plastic production volumes have led to the widespread presence of bisphenol compounds in human living and working environments. The most common bisphenol, bisphenol A (BPA), despite being endocrine disruptive and estrogenic, is still not fully banned worldwide, leading to continued human exposure via particles in air, dust, and surfaces in both outdoor and indoor environments. While its abundance is well documented, few studies have addressed the chemical transformations of BPA, the properties of its reactive products, and their toxicity. Here, the first gas-surface multiphase ozonolysis experiment of BPA thin films, at a constant ozone mixing ratio of 100 ppb, was performed in a flow tube for periods up to 24 h. Three transformation products involving the addition of 1, 2, and 3 oxygen atoms to the molecule were identified by LC-ESI-HRMS analyses. Exposure of indoor air to thin BPA surface films and BPA-containing thermal paper over periods of days validated the flow tube experiments, demonstrating the rapid nature of this multiphase ozonolysis reaction at atmospherically relevant ozone levels. Multiple transformation pathways are proposed that are likely applicable to not only BPA but also emerging commercial bisphenol products.

摘要

高全球塑料产量导致双酚化合物广泛存在于人类生活和工作环境中。最常见的双酚化合物双酚 A(BPA)尽管具有内分泌干扰和雌激素作用,但在全球范围内尚未完全禁用,这导致人类持续通过空气、灰尘和户外及室内环境表面的颗粒暴露于其中。尽管 BPA 的丰度已有大量文献记载,但很少有研究涉及 BPA 的化学转化、其反应产物的性质及其毒性。在这里,在流量管中进行了 BPA 薄膜的第一次气相-表面多相臭氧化实验,臭氧混合比为 100ppb,持续时间长达 24 小时。通过 LC-ESI-HRMS 分析鉴定了涉及分子中添加 1、2 和 3 个氧原子的三种转化产物。将室内空气暴露于薄 BPA 表面膜和含有 BPA 的热敏纸上数天,验证了流量管实验,表明在大气相关臭氧水平下,这种多相臭氧化反应具有快速的性质。提出了多种转化途径,这些途径不仅可能适用于 BPA,也可能适用于新兴的商业双酚产品。

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