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2
Characterization of paint dust aerosol generated from mechanical abrasion of TiO-containing paints.机械打磨含 TiO2 涂料产生的漆尘气溶胶特性研究。
J Occup Environ Hyg. 2018 Sep;15(9):629-640. doi: 10.1080/15459624.2018.1484126.
3
Short-Term Pulmonary Toxicity Assessment of Pre- and Post-incinerated Organomodified Nanoclay in Mice.短时间燃烧前后有机改性纳米黏土对小鼠肺部毒性的评估
ACS Nano. 2018 Mar 27;12(3):2292-2310. doi: 10.1021/acsnano.7b07281. Epub 2018 Feb 22.
4
Early Assessment and Correlations of Nanoclay's Toxicity to Their Physical and Chemical Properties.早期评估与纳米黏土的物理化学性质与其毒性的相关性。
ACS Appl Mater Interfaces. 2017 Sep 20;9(37):32323-32335. doi: 10.1021/acsami.7b06657. Epub 2017 Sep 5.
5
Toxicity evaluations of nanoclays and thermally degraded byproducts through spectroscopical and microscopical approaches.通过光谱和显微镜方法评估纳米黏土和热降解副产物的毒性。
Biochim Biophys Acta Gen Subj. 2017 Jan;1861(1 Pt A):3406-3415. doi: 10.1016/j.bbagen.2016.09.003. Epub 2016 Sep 7.
6
Performance of Passive Samplers Analyzed by Computer-Controlled Scanning Electron Microscopy to Measure PM10-2.5.采用计算机控制扫描电子显微镜分析被动采样器对 PM10-2.5 的测定性能。
Environ Sci Technol. 2016 Jul 19;50(14):7581-9. doi: 10.1021/acs.est.6b01105. Epub 2016 Jun 24.
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Induction of micronuclei and alteration of gene expression by an organomodified clay in HepG2 cells.有机改性黏土诱导 HepG2 细胞形成微核及基因表达改变。
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Improving the fracture toughness and the strength of epoxy using nanomaterials--a review of the current status.使用纳米材料提高环氧树脂的断裂韧性和强度——现状综述
Nanoscale. 2015 Jun 21;7(23):10294-329. doi: 10.1039/c5nr01354b.
9
A review and perspective of existing research on the release of nanomaterials from solid nanocomposites.固体纳米复合材料中纳米材料释放的现有研究综述与展望
Part Fibre Toxicol. 2014 Apr 7;11:17. doi: 10.1186/1743-8977-11-17.
10
Potential release scenarios for carbon nanotubes used in composites.复合材料用碳纳米管的潜在释放情景。
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纳米粘土增强复合材料在加工过程中雾化颗粒的表征

Characterization of aerosolized particles from nanoclay-enabled composites during manipulation processes.

作者信息

Lee Eun Gyung, Cena Lorenzo, Kwon Jiwoon, Afshari Ali, Park HaeDong, Casuccio Gary, Bunker Kristin, Lersch Traci, Gall Ashley, Pham Huy, Wagner Alixandra, Agarwal Sushant, Dinu Cerasela Zoica, Gupta Rakesh, Friend Sherri A, Stueckle Todd A

机构信息

National Institute for Occupational Safety and Health (NIOSH), Health Effects Laboratory Division (HELD), 1095 Willowdale Road, Morgantown, WV 26505, USA.

West Chester University, West Chester, PA, USA.

出版信息

Environ Sci Nano. 2020 May 21;7:1539-1553. doi: 10.1039/c9en01211g.

DOI:10.1039/c9en01211g
PMID:37205161
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10190203/
Abstract

Manufacturing, processing, use, and disposal of nanoclay-enabled composites potentially lead to the release of nanoclay particles from the polymer matrix in which they are embedded; however, exposures to airborne particles are poorly understood. The present study was conducted to characterize airborne particles released during sanding of nanoclay-enabled thermoplastic composites. Two types of nanoclay, Cloisite® 25A and Cloisite® 93A, were dispersed in polypropylene at 0%, 1%, and 4% loading by weight. Zirconium aluminum oxide (P100/P180 grits) and silicon carbide (P120/P320 grits) sandpapers were used to abrade composites in controlled experiments followed by real-time and offline particle analyses. Overall, sanding the virgin polypropylene with zirconium aluminum oxide sandpaper released more particles compared to silicon carbide sandpaper, with the later exhibiting similar or lower concentrations than that of polypropylene. Thus, a further investigation was performed for the samples collected using the zirconium aluminum oxide sandpaper. The 1% 25A, 1% 93A, and 4% 93A composites generated substantially higher particle number concentrations (1.3-2.6 times) and respirable mass concentrations (1.2-2.3 times) relative to the virgin polypropylene, while the 4% 25A composite produced comparable results, regardless of sandpaper type. It was observed that the majority of the inhalable particles were originated from composite materials with a significant number of protrusions of nanoclay (18-59%). These findings indicate that the percent loading and dispersion of nanoclay in the polypropylene modified the mechanical properties and thus, along with sandpaper type, affected the number of particles released during sanding, implicating the cause of potential adverse health effects.

摘要

含纳米黏土复合材料的制造、加工、使用和处置可能会导致纳米黏土颗粒从其嵌入的聚合物基体中释放出来;然而,人们对空气中颗粒暴露的情况了解甚少。本研究旨在表征含纳米黏土热塑性复合材料打磨过程中释放的空气中颗粒。两种类型的纳米黏土,即Cloisite® 25A和Cloisite® 93A,以0%、1%和4%的重量负载分散在聚丙烯中。在对照实验中,使用锆铝氧化物(P100/P180粒度)和碳化硅(P120/P320粒度)砂纸对复合材料进行研磨,随后进行实时和离线颗粒分析。总体而言,与碳化硅砂纸相比,用锆铝氧化物砂纸打磨纯聚丙烯释放出更多颗粒,后者显示出与聚丙烯相似或更低的浓度。因此,对使用锆铝氧化物砂纸收集的样品进行了进一步研究。相对于纯聚丙烯,1% 25A、1% 93A和4% 93A复合材料产生的颗粒数浓度(1.3 - 2.6倍)和可吸入质量浓度(1.2 - 2.3倍)显著更高,而4% 25A复合材料产生的结果相当,与砂纸类型无关。据观察,大多数可吸入颗粒源自具有大量纳米黏土突出物(18 - 59%)的复合材料。这些发现表明,纳米黏土在聚丙烯中的负载百分比和分散情况改变了机械性能,因此与砂纸类型一起,影响了打磨过程中释放的颗粒数量,这暗示了潜在健康不良影响的原因。