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消费者接触激光打印机排放的工程纳米颗粒:一项关于纳米技术产品生命周期影响的案例研究。

Consumer exposures to laser printer-emitted engineered nanoparticles: A case study of life-cycle implications from nano-enabled products.

作者信息

Pirela Sandra V, Sotiriou Georgios A, Bello Dhimiter, Shafer Martin, Bunker Kristin Lee, Castranova Vincent, Thomas Treye, Demokritou Philip

机构信息

Department of Environmental Health, Center for Nanotechnology and Nanotoxicology, School of Public Health, Harvard University , Boston, MA , USA .

出版信息

Nanotoxicology. 2015;9(6):760-8. doi: 10.3109/17435390.2014.976602. Epub 2014 Nov 11.

Abstract

It is well established that printers emit nanoparticles during their operation. To-date, however, the physicochemical and toxicological characterization of "real world" printer-emitted nanoparticles (PEPs) remains incomplete, hampering proper risk assessment efforts. Here, we investigate our earlier hypothesis that engineered nanomaterials (ENMs) are used in toners and ENMs are released during printing (consumer use). Furthermore, we conduct a detailed physicochemical and morphological characterization of PEPs in support of ongoing toxicological assessment. A comprehensive suite of state of the art analytical methods and tools was employed for the physicochemical and morphological characterization of 11 toners widely utilized in printers from major printer manufacturers and their PEPs. We confirmed that a number of ENMs incorporated into toner formulations (e.g. silica, alumina, titania, iron oxide, zinc oxide, copper oxide, cerium oxide, carbon black among others) and released into the air during printing. All evaluated toners contained large amounts of organic carbon (OC, 42-89%), metals/metal oxides (1-33%), and some elemental carbon (EC, 0.33-12%). The PEPs possess a composition similar to that of toner and contained 50-90% OC, 0.001-0.5% EC and 1-3% metals. While the chemistry of the PEPs generally reflected that of their toners, considerable differences are documented indicative of potential transformations taking place during consumer use (printing). We conclude that: (i) Routine incorporation of ENMs in toners classifies them as nano-enabled products (NEPs); (ii) These ENMs become airborne during printing; (iii) The chemistry of PEPs is complex and it reflects that of the toner and paper. This work highlights the importance of understanding life-cycle (LC) nano-EHS implications of NEPs and assessing real world exposures and associated toxicological properties rather than focusing on "raw" materials used in the synthesis of an NEP.

摘要

打印机在运行过程中会释放纳米颗粒,这一点已得到充分证实。然而,迄今为止,“现实世界”中打印机释放的纳米颗粒(PEP)的物理化学和毒理学特性仍不完整,这阻碍了适当的风险评估工作。在此,我们研究了我们之前的假设,即工程纳米材料(ENM)用于调色剂中,并且在打印(消费者使用)过程中会释放出ENM。此外,我们对PEP进行了详细的物理化学和形态学表征,以支持正在进行的毒理学评估。我们采用了一套全面的先进分析方法和工具,对主要打印机制造商的打印机广泛使用的11种调色剂及其PEP进行了物理化学和形态学表征。我们证实,多种ENM被纳入调色剂配方中(例如二氧化硅、氧化铝、二氧化钛、氧化铁、氧化锌、氧化铜、氧化铈、炭黑等),并在打印过程中释放到空气中。所有评估的调色剂都含有大量的有机碳(OC,42-89%)、金属/金属氧化物(1-33%)和一些元素碳(EC,0.33-12%)。PEP的组成与调色剂相似,含有50-90%的OC、0.001-0.5%的EC和1-3%的金属。虽然PEP的化学性质通常反映了其调色剂的化学性质,但记录显示存在相当大的差异,这表明在消费者使用(打印)过程中可能发生了潜在的转变。我们得出以下结论:(i)在调色剂中常规掺入ENM将它们归类为纳米功能产品(NEP);(ii)这些ENM在打印过程中会进入空气中;(iii)PEP的化学性质很复杂,它反映了调色剂和纸张的化学性质。这项工作强调了理解NEP的生命周期(LC)纳米环境健康与安全影响以及评估现实世界暴露和相关毒理学特性的重要性,而不是专注于用于合成NEP的“原始”材料。

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