Brazilian Nanotechnology National Laboratory (LNNano), Brazilian Center for Research in Energy and Materials (CNPEM), Zip Code 13083-970 Campinas, São Paulo, Brazil; Instituto de Pesca - APTA-SAA/SP, Zip Code l11990-000 Cananéia, São Paulo, Brazil.
Brazilian Nanotechnology National Laboratory (LNNano), Brazilian Center for Research in Energy and Materials (CNPEM), Zip Code 13083-970 Campinas, São Paulo, Brazil.
Sci Total Environ. 2017 Dec 31;607-608:1479-1486. doi: 10.1016/j.scitotenv.2017.07.045. Epub 2017 Jul 29.
In this work, industrial grade multi-walled carbon nanotubes (MWCNT) were coated with humic acid (HA) for the first time by means of a milling process, which can be considered an eco-friendly mechanochemical method to prepare materials and composites. The HA-MWCNT hybrid material was characterized by atomic force microscopy (AFM), scanning electron microscopies (SEM and STEM), X-ray photoelectron spectroscopy (XPS), termogravimetric analysis (TGA), and Raman spectroscopy. STEM and AFM images demonstrated that the MWCNTs were efficiently coated by the humic acid, thus leading to an increase of 20% in the oxygen content at the nanotube surface as observed by the XPS data. After the milling process, the carbon nanotubes were shortened as unveiled by SEM images and the values of ID/IG intensity ratio increased due to shortening of the nanotubes and increasing in the number defects at the graphitic structure of carbon nanotubes walls. The analysis of TGA data showed that the quantity of the organic matter of HA on the nanotube surface was 25%. The HA coating was responsible to favor the dispersion of MWCNTs in ultrapure water (i.e. -42mV, zeta-potential value) and to improve their capacity for copper removal. HA-MWCNTs hybrid material adsorbed 2.5 times more Cu(II) ions than oxidized MWCNTs with HNO, thus evidencing that it is a very efficient adsorbent material for removing copper ions from reconstituted water. The HA-MWCNTs hybrid material did not show acute ecotoxicity to the tested aquatic model organisms (Hydra attenuata, Daphnia magna, and Danio rerio embryos) up to the highest concentration evaluated (10mgL). The results allowed concluding that the mechanochemical method is effective to coat carbon nanotubes with humic acid, thus generating a functional hybrid material with low aquatic toxicity and great potential to be applied in environmental nanotechnologies such as the removal of heavy metal ions from water.
在这项工作中,首次通过研磨工艺将工业级多壁碳纳米管 (MWCNT) 涂覆腐殖酸 (HA),这可以被认为是一种环保的机械化学方法来制备材料和复合材料。通过原子力显微镜 (AFM)、扫描电子显微镜 (SEM 和 STEM)、X 射线光电子能谱 (XPS)、热重分析 (TGA) 和拉曼光谱对 HA-MWCNT 杂化材料进行了表征。STEM 和 AFM 图像表明,MWCNT 被腐殖酸有效地涂覆,从而导致通过 XPS 数据观察到的纳米管表面的氧含量增加了 20%。研磨后,SEM 图像揭示了碳纳米管变短,并且由于碳纳米管变短和碳纳米管壁石墨结构中缺陷数量的增加,ID/IG 强度比增加。TGA 数据分析表明,纳米管表面腐殖酸的有机物量为 25%。HA 涂层有利于 MWCNTs 在超纯水中的分散(即-42mV,zeta-电位值),并提高其去除铜的能力。与用 HNO3 氧化的 MWCNTs 相比,HA-MWCNTs 杂化材料吸附了 2.5 倍以上的 Cu(II)离子,从而证明它是一种从重组水中去除铜离子的非常有效的吸附材料。HA-MWCNTs 杂化材料对测试的水生模式生物(水螅、大型蚤和斑马鱼胚胎)没有表现出急性生态毒性,直到评估的最高浓度(10mgL)。结果表明,机械化学方法可有效地将碳纳米管涂覆腐殖酸,从而生成一种具有低水生毒性且具有很大潜力的功能杂化材料,可应用于环境纳米技术,例如从水中去除重金属离子。