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SARS-CoV-2 药物:关于先进氧化工艺在水中的环境影响、化学特性和行为的批判性回顾。

SARS-CoV-2 pharmaceutical drugs: a critical review on the environmental impacts, chemical characteristics, and behavior of advanced oxidation processes in water.

机构信息

Instituto Interamericano de Tecnología Y Ciencias de Agua (IITCA), Universidad Autónoma del Estado de México, Km.14.5, Carretera Toluca-Atlacomulco, Toluca, Estado de México, C.P 50200, México.

Cátedras CONACYT-IITCA, Av. Insurgentes Sur 1582, Col. Crédito Constructor, Alcaldía Benito Juárez, Ciudad de Mexico, C.P 03940, México.

出版信息

Environ Sci Pollut Res Int. 2022 Sep;29(45):67604-67640. doi: 10.1007/s11356-022-22234-2. Epub 2022 Aug 5.

Abstract

This review summarizes research data on the pharmaceutical drugs used to treat the novel SARS-CoV-2 virus, their characteristics, environmental impacts, and the advanced oxidation processes (AOP) applied to remove them. A literature survey was conducted using the electronic databases Science Direct, Scopus, Taylor & Francis, Google Scholar, PubMed, and Springer. This complete research includes and discusses relevant studies that involve the introduction, pharmaceutical drugs used in the SARS-CoV-2 pandemic: chemical characteristics and environmental impact, advanced oxidation process (AOP), future trends and discussion, and conclusions. The results show a full approach in the versatility of AOPs as a promising solution to minimize the environmental impact associated with these compounds by the fact that they offer different ways for hydroxyl radical production. Moreover, this article focuses on introducing the fundamentals of each AOP, the main parameters involved, and the concomitance with other sources and modifications over the years. Photocatalysis, sonochemical technologies, electro-oxidation, photolysis, Fenton reaction, ozone, and sulfate radical AOP have been used to mineralize SARS-CoV-2 pharmaceutical compounds, and the efficiencies are greater than 65%. According to the results, photocatalysis is the main technology currently applied to remove these pharmaceuticals. This process has garnered attention because solar energy can be directly utilized; however, low photocatalytic efficiencies and high costs in large-scale practical applications limit its use. Furthermore, pharmaceuticals in the environment are diverse and complex. Finally, the review also provides ideas for further research needs and major concerns.

摘要

这篇综述总结了用于治疗新型 SARS-CoV-2 病毒的药物的研究数据,包括它们的特性、对环境的影响,以及应用于去除它们的高级氧化工艺 (AOP)。通过电子数据库 Science Direct、Scopus、Taylor & Francis、Google Scholar、PubMed 和 Springer 进行了文献调查。这项全面的研究包括并讨论了相关研究,涉及 SARS-CoV-2 大流行中使用的药物:化学特性和环境影响、高级氧化工艺 (AOP)、未来趋势和讨论、结论。结果表明,AOP 的多功能性是一种很有前途的解决方案,可以最大限度地减少与这些化合物相关的环境影响,因为它们提供了产生羟基自由基的不同方法。此外,本文还重点介绍了每种 AOP 的基本原理、涉及的主要参数,以及多年来与其他来源和改性的伴随关系。光催化、声化学技术、电氧化、光解、芬顿反应、臭氧和硫酸盐自由基 AOP 已被用于矿化 SARS-CoV-2 药物化合物,效率大于 65%。根据结果,光催化是目前用于去除这些药物的主要技术。该工艺因其可以直接利用太阳能而备受关注,但在大规模实际应用中,光催化效率低、成本高限制了其应用。此外,环境中的药物多种多样且复杂。最后,该综述还为进一步的研究需求和主要关注点提供了思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8bb/9362221/e9d778da4736/11356_2022_22234_Fig1_HTML.jpg

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