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Bioleaching of copper from large printed circuit boards for synthesis of organic-inorganic hybrid.从大型印刷电路板中生物浸出铜以合成有机-无机杂化材料。
Environ Sci Pollut Res Int. 2020 Feb;27(6):5797-5808. doi: 10.1007/s11356-019-07244-x. Epub 2019 Dec 19.
2
A novel step-wise indirect bioleaching using biogenic ferric agent for enhancement recovery of valuable metals from waste light emitting diode (WLED).一种新型分步间接生物浸出法,利用生物成因的铁剂提高废发光二极管(WLED)有价金属的回收。
J Hazard Mater. 2019 Oct 15;378:120648. doi: 10.1016/j.jhazmat.2019.05.041. Epub 2019 May 20.
3
Bioleaching of heavy metals from harbor sediment using sulfur-oxidizing microflora acclimated from native sediment and exogenous soil.利用从本地沉积物和外源土壤驯化的硫氧化微生物从港湾沉积物中生物浸提重金属。
Environ Sci Pollut Res Int. 2019 Mar;26(7):6818-6828. doi: 10.1007/s11356-019-04137-x. Epub 2019 Jan 11.
4
Enhancement of copper, nickel, and gallium recovery from LED waste by adaptation of Acidithiobacillus ferrooxidans.通过适应嗜酸氧化亚铁硫杆菌提高 LED 废物中铜、镍和镓的回收。
Waste Manag. 2018 Sep;79:98-108. doi: 10.1016/j.wasman.2018.07.010. Epub 2018 Jul 20.
5
Integrated bioleaching of copper metal from waste printed circuit board-a comprehensive review of approaches and challenges.从废弃印刷电路板中生物浸出铜金属的综合研究——方法与挑战综述
Environ Sci Pollut Res Int. 2016 Nov;23(21):21141-21156. doi: 10.1007/s11356-016-7529-9. Epub 2016 Sep 28.
6
Role of Aspergillus niger in recovery enhancement of valuable metals from produced red mud in Bayer process.黑曲霉在拜耳法生产赤泥有价金属回收增强中的作用。
Bioresour Technol. 2016 Oct;218:991-8. doi: 10.1016/j.biortech.2016.07.059. Epub 2016 Jul 15.
7
Enhancement of simultaneous gold and copper recovery from discarded mobile phone PCBs using Bacillus megaterium: RSM based optimization of effective factors and evaluation of their interactions.利用巨大芽孢杆菌提高从废弃手机印刷电路板中同时回收金和铜:基于响应面法对有效因素进行优化及其相互作用评估
Waste Manag. 2016 Nov;57:158-167. doi: 10.1016/j.wasman.2016.05.012. Epub 2016 Jun 2.
8
Materials recovery from waste liquid crystal displays: A focus on indium.从废旧液晶显示器中回收材料:以铟为重点。
Waste Manag. 2015 Nov;45:325-33. doi: 10.1016/j.wasman.2015.07.043. Epub 2015 Jul 31.
9
Leaching capacity of metals-metalloids and recovery of valuable materials from waste LCDs.金属-类金属的浸出能力及从废旧液晶显示器中回收有价物质
Waste Manag. 2015 Nov;45:314-24. doi: 10.1016/j.wasman.2015.05.025. Epub 2015 Jun 15.
10
Cross-current leaching of indium from end-of-life LCD panels.从报废液晶显示器面板中错流浸出铟
Waste Manag. 2015 Aug;42:180-7. doi: 10.1016/j.wasman.2015.04.035. Epub 2015 May 18.

利用适应性嗜酸细菌从废弃OLED触摸屏中生物浸出关键金属。

Bioleaching of critical metals from waste OLED touch screens using adapted acidophilic bacteria.

作者信息

Pourhossein Fatemeh, Rezaei Omid, Mousavi Seyyed Mohammad, Beolchini Francesca

机构信息

Biotechnology Group, Chemical Engineering Department, Tarbiat Modares University, Tehran, Iran.

Department of Life and Environmental Sciences, Università Politecnica delle Marche, Ancona, Italy.

出版信息

J Environ Health Sci Eng. 2021 May 4;19(1):893-906. doi: 10.1007/s40201-021-00657-2. eCollection 2021 Jun.

DOI:10.1007/s40201-021-00657-2
PMID:34150280
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8172694/
Abstract

The mobile phone is a fast-growing E-waste stream that includes hazardous substances and valuable metals. Smartphone touch screens (SPTS) contain a considerable amount of critical metals, such as indium and strontium that can be recovered from end of life devices as a secondary resource. Bioleaching is an emerging and environmentally friendly method for metal recovery from electronic waste. In the present study, bioleaching was assessed for the extraction of indium and strontium from organic light emitting diode type smartphone touch screens. A statistical approach based on the response surface methodology was successfully applied. The effects of influential variables: pH, ferrous sulfate, elemental sulfur, and solid content and their interactions on indium and strontium recovery using adapted were evaluated. Under optimum conditions (ferrous sulfate: 13.0 g/L; solid content; 3.0 g/L; elemental sulfur: 5.6 g/L; and initial pH of 1.1), a complete indium extraction was observed, with a concentration in solution of about 200 mg/L indium. As concerns strontium, a 5% extraction efficiency was observed, which, even if quite low, resulted in a relatively high strontium concentration in solution, around 3000 mg/L, due to its high content in the solid (2%). This work opens new perspectives in the application of clean technologies for the extraction of valuable metals, such as indium and strontium from smartphone screens.

摘要

手机是一种快速增长的电子垃圾流,其中包含有害物质和贵重金属。智能手机触摸屏(SPTS)含有大量关键金属,如铟和锶,这些金属可从报废设备中回收作为二次资源。生物浸出是一种从电子废物中回收金属的新兴且环保的方法。在本研究中,评估了生物浸出法从有机发光二极管型智能手机触摸屏中提取铟和锶的效果。成功应用了基于响应面法的统计方法。评估了影响变量(pH值、硫酸亚铁、元素硫和固体含量)及其相互作用对使用改良方法回收铟和锶的影响。在最佳条件下(硫酸亚铁:13.0 g/L;固体含量:3.0 g/L;元素硫:5.6 g/L;初始pH值为1.1),观察到铟完全被提取,溶液中铟的浓度约为200 mg/L。至于锶,观察到提取效率为5%,尽管相当低,但由于其在固体中的含量较高(2%),溶液中的锶浓度相对较高,约为3000 mg/L。这项工作为应用清洁技术从智能手机屏幕中提取铟和锶等贵重金属开辟了新的前景。