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Integrating biometallurgical recovery of metals with biogenic synthesis of nanoparticles

机译:与纳米颗粒的生物合成相结合生物冶金恢复

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摘要

Industrial activities, such as mining, electroplating, cement production, and metallurgical operations, as well as manufacturing of plastics, fertilizers, pesticides, batteries, dyes or anticorrosive agents, can cause metal contamination in the surrounding environment. This is an acute problem due to the nonbiodegradable nature of metal pollutants, their transformation into toxic and carcinogenic compounds, and bioaccumulation through the food chain. At the same time, platinum group metals and rare earth elements are of strong economic interest and their recovery is incentivized. Microbial interaction with metals or metals-bearing minerals can facilitate metals recovery in the form of nanoparticles. Metal nanoparticles are gaining increasing attention due to their unique characteristics and application as antimicrobial and antibiofilm agents, biocatalysts, in targeted drug delivery, for wastewater treatment, and in water electrolysis. Ideally, metal nanoparticles should be homogenous in shape and size, and not toxic to humans or the environment. Microbial synthesis of nanoparticles represents a safe, and environmentally friendly alternative to chemical and physical methods. In this review article, we mainly focus on metal and metal salts nanoparticles synthesized by various microorganisms, such as bacteria, fungi, microalgae, and yeasts, as well as their advantages in biomedical, health, and environmental applications. (C) 2020 The Author(s). Published by Elsevier Ltd.
机译:工业活动,如采矿,电镀,水泥生产和冶金操作,以及塑料,肥料,农药,电池,染料或防腐剂的制造,可导致周围环境中的金属污染。这是由于金属污染物的非增强性质,转化为毒性和致癌化合物的转化,并且通过食物链的生物累积,这是一种急性问题。与此同时,铂族群金属和稀土元素具有很强的经济兴趣,并激励其恢复。与金属或金属含矿物的微生物相互作用可以促进纳米颗粒形式的金属回收。由于其独特的特性和应用作为抗微生物和抗菌剂,生物催化剂,靶向药物递送,靶向药物递送,用于废水处理以及水电解,金属纳米粒子正在增加。理想情况下,金属纳米颗粒应在形状和尺寸的形状和大小均匀,对人类或环境无毒。纳米颗粒的微生物合成代表了对化学和物理方法的安全性和环保替代品。在本文中,我们主要关注由各种微生物合成的金属和金属盐纳米粒子,例如细菌,真菌,微藻和酵母,以及它们在生物医学,健康和环境应用中的优势。 (c)2020提交人。 elsevier有限公司出版

著录项

  • 来源
    《Chemosphere》 |2021年第3期|128306.1-128306.23|共23页
  • 作者单位

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Chem Engn Biochem Proc Engn SE-97187 Lulea Sweden;

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Chem Engn Biochem Proc Engn SE-97187 Lulea Sweden;

    Boliden Mineral AB SE-93632 Boliden Sweden;

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Minerals & Met Engn Mineral Proc SE-97187 Lulea Sweden;

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Chem Engn Biochem Proc Engn SE-97187 Lulea Sweden;

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Minerals & Met Engn Mineral Proc SE-97187 Lulea Sweden;

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Chem Engn Biochem Proc Engn SE-97187 Lulea Sweden;

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Chem Engn Biochem Proc Engn SE-97187 Lulea Sweden;

    Lulea Univ Technol Dept Civil Environm & Nat Resources Engn Div Chem Engn Biochem Proc Engn SE-97187 Lulea Sweden;

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

    Environment; Metal nanoparticles; Metal recovery; Microbial synthesis; Wastewater;

    机译:环境;金属纳米颗粒;金属回收;微生物合成;废水;

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