Department of Civil and Environmental Engineering, Northeastern University, Boston, Massachusetts, United States.
Environ Sci Technol. 2012 Mar 6;46(5):2902-10. doi: 10.1021/es203409a. Epub 2012 Feb 27.
Environmental impacts due to engineered nanomaterials arise both from releases of the nanomaterials themselves as well as from their synthesis. In this work, we employ the USEtox model to quantify and compare aquatic ecotoxicity impacts over the life cycle of carbon nanotubes (CNTs). USEtox is an integrated multimedia fate, transport, and toxicity model covering large classes of organic and inorganic substances. This work evaluates the impacts of non-CNT emissions from three methods of synthesis (arc ablation, CVD, and HiPco), and compares these to the modeled ecotoxicity of CNTs released to the environment. Parameters for evaluating CNT ecotoxicity are bounded by a highly conservative "worst case" scenario and a "realistic" scenario that draws from existing literature on CNT fate, transport, and ecotoxicity. The results indicate that the ecotoxicity impacts of nanomaterial production processes are roughly equivalent to the ecotoxicity of CNT releases under the unrealistic worst case scenario, while exceeding the results of the realistic scenario by 3 orders of magnitude. Ecotoxicity from production processes is dominated by emissions of metals from electricity generation. Uncertainty exists for both production and release stages, and is modeled using a combination of Monte Carlo simulation and scenario analysis. The results of this analysis underscore the contributions of existing work on CNT fate and transport, as well as the importance of life cycle considerations in allocating time and resources toward research on mitigating the impacts of novel materials.
由于工程纳米材料的释放以及它们的合成,会产生环境影响。在这项工作中,我们采用 USEtox 模型来量化和比较碳纳米管(CNT)生命周期中的水生生态毒性影响。USEtox 是一个综合的多介质命运、传输和毒性模型,涵盖了大量的有机和无机物质。这项工作评估了三种合成方法(电弧烧蚀、CVD 和 HiPco)中非 CNT 排放的影响,并将这些影响与释放到环境中的 CNT 生态毒性模型进行了比较。评估 CNT 生态毒性的参数受到高度保守的“最坏情况”场景和从 CNT 命运、传输和生态毒性现有文献中得出的“现实”场景的限制。结果表明,在不现实的最坏情况下,纳米材料生产过程的生态毒性影响与 CNT 释放的生态毒性大致相当,而在现实情况下,生态毒性影响则超过了 3 个数量级。生产过程中的生态毒性主要来自发电过程中金属的排放。生产和释放阶段都存在不确定性,使用蒙特卡罗模拟和情景分析相结合的方法进行建模。该分析的结果强调了现有 CNT 命运和传输工作的贡献,以及在分配时间和资源以减轻新型材料影响的生命周期考虑中的重要性。