Quantitative evaluation of released nanomaterials from carbon nanotube epoxy nanocomposites during environmental exposure and mechanical treatment

IF 4.7 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Yue Zhao , David G. Goodwin Jr. , Lipiin Sung , Girish Ramakrishnan , Qiyuan Wu , Jiajie Cen , Elijah J. Petersen , Alexander Orlov
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Abstract

Carbon nanotubes (CNTs) are promising nanomaterials exhibiting high thermal and electrical conductivities, significant stiffness, and high tensile strength. As a result, CNTs have been utilized as additives to enhance properties of various polymeric materials in a broad range of fields. In this study, we investigated the release of CNTs from CNT epoxy nanocomposites exposed to environmental weathering and mechanical stresses. The presence and amount of CNTs released from degraded polymer nanocomposites is important because CNTs can impact physiological systems in humans and environmental organisms. The weathering experiments in this study included nanocomposite exposure to both UV and a water spray, to simulate sunlight and rain exposure, whereas mechanical stresses were induced by shaking and ultrasonication. CNT release from epoxy nanocomposites was quantified by a 14C-labeling method that enabled measurement of the CNT release rates after different weathering and mechanical treatments. In this study, a sample oxidizer was used prior to liquid scintillation counting, because it was shown to reduce interferences from the presence of polymeric materials and achieve a high recovery (95%). Polymer nanocomposite degradation was confirmed by attenuated total reflectance-Fourier transform infrared spectroscopy (ATR-FTIR), scanning electron microscopy (SEM), and light microscopy. A continuous release of 14C-labeled nanomaterials was observed after each UV and simulated rain exposure period, with 0.23% (mass/mass) of the total embedded mass of CNTs being released from the CNT nanocomposite during the full weathering process, suggesting that the water spray induced sufficient mechanical stress to eliminate the protective effect of the surface agglomerated CNT network. Importantly, additional mechanical stresses imposed on the weathered nanocomposites by shaking and ultrasonication resulted in further release of approximately 0.27% (mass /mass).

Abstract Image

碳纳米管-环氧树脂纳米复合材料在环境暴露和机械处理过程中释放的纳米材料的定量评估。
碳纳米管(CNTs)是一种很有前途的纳米材料,具有高热导率、高刚度和高拉伸强度。因此,CNT已被用作添加剂,以在广泛的领域中增强各种聚合物材料的性能。在本研究中,我们研究了暴露于环境风化和机械应力的CNT-环氧树脂纳米复合材料中CNT的释放。从降解的聚合物纳米复合材料中释放的CNT的存在和数量是重要的,因为CNT可以影响人类和环境生物的生理系统。本研究中的风化实验包括纳米复合材料暴露在紫外线和水雾中,以模拟阳光和雨水暴露,而机械应力是由振动和超声波引起的。通过14C标记方法对环氧树脂纳米复合材料中CNT的释放进行量化,该方法能够测量不同风化和机械处理后的CNT释放速率。在这项研究中,在液体闪烁计数之前使用了样品氧化剂,因为它被证明可以减少聚合物材料的干扰,并实现高回收率(95%)。通过衰减全反射傅立叶变换红外光谱(ATR-FTIR)、扫描电子显微镜(SEM)和光学显微镜证实了聚合物纳米复合材料的降解。在每个紫外线和模拟降雨暴露期后,都观察到14C标记的纳米材料的连续释放,在完全风化过程中,CNT纳米复合材料释放了0.23%(质量/质量)的CNT总嵌入质量,这表明喷水诱导了足够的机械应力,以消除表面团聚的CNT网络的保护作用。重要的是,通过振动和超声作用施加在风化的纳米复合材料上的额外机械应力导致约0.27%(质量/质量)的进一步释放。
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来源期刊
NanoImpact
NanoImpact Social Sciences-Safety Research
CiteScore
11.00
自引率
6.10%
发文量
69
审稿时长
23 days
期刊介绍: NanoImpact is a multidisciplinary journal that focuses on nanosafety research and areas related to the impacts of manufactured nanomaterials on human and environmental systems and the behavior of nanomaterials in these systems.
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