Laboratory of Environmental Nanotechnology and Health Effect, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China; State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China; University of Chinese Academy of Sciences, Beijing 100049, China.
State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.
J Environ Sci (China). 2023 Apr;126:494-505. doi: 10.1016/j.jes.2022.05.034. Epub 2022 Jun 1.
Single particle-inductively coupled plasma mass spectrometry (SP-ICP-MS) is a powerful tool for size-characterization of metal-containing nanoparticles (MCNs) at environmentally relevant concentrations, however, coexisting dissolved metal ions greatly interfere with the accuracy of particle size analysis. The purpose of this study is to develop an online technique that couples hollow fiber ultrafiltration (HFUF) with SP-ICP-MS to improve the accuracy and size detection limit of MCNs by removing metal ions from suspensions of MCNs. Through systematic optimization of conditions including the type and concentration of surfactant and complexing agent, carrier pH, and ion cleaning time, HFUF completely removes metal ions but retains the MCNs in suspension. The optimal conditions include using a mixture of 0.05 vol.% FL-70 and 0.5 mmol/L NaSO (pH = 8.0) as the carrier and 4 min as the ion cleaning time. At these conditions, HFUF-SP-ICP-MS accurately determines the sizes of MCNs, and the results agree with the size distribution determined by transmission electron microscopy, even when metal ions also are present in the sample. In addition, reducing the ionic background through HFUF also lowers the particle size detection limit with SP-ICP-MS (e.g., from 28.3 to 14.2 nm for gold nanoparticles). This size-based ion-removal principle provided by HFUF is suitable for both cations (e.g., Ag) and anions (e.g., AuCl) and thus has good versatility compared to ion exchange purification and promising prospects for the removal of salts and macromolecules before single particle analysis.
单颗粒电感耦合等离子体质谱 (SP-ICP-MS) 是一种强大的工具,可用于在环境相关浓度下对含金属纳米颗粒 (MCNs) 进行尺寸表征,然而,共存的溶解金属离子会极大地干扰颗粒尺寸分析的准确性。本研究的目的是开发一种在线技术,将中空纤维超滤 (HFUF) 与 SP-ICP-MS 耦合,通过从 MCNs 悬浮液中去除金属离子来提高 MCNs 的准确性和尺寸检测下限。通过对包括表面活性剂和络合剂的类型和浓度、载体 pH 和离子清洗时间等条件进行系统优化,HFUF 可完全去除金属离子,但保留悬浮液中的 MCNs。最佳条件包括使用 0.05 体积% FL-70 和 0.5 mmol/L NaSO 的混合物 (pH = 8.0) 作为载体,以及 4 分钟的离子清洗时间。在这些条件下,HFUF-SP-ICP-MS 可准确测定 MCNs 的尺寸,并且结果与透射电子显微镜确定的尺寸分布一致,即使样品中也存在金属离子。此外,通过 HFUF 降低离子背景还可降低 SP-ICP-MS 的颗粒尺寸检测下限(例如,金纳米颗粒的检测下限从 28.3 降至 14.2nm)。HFUF 提供的基于尺寸的离子去除原理适用于阳离子(例如,Ag)和阴离子(例如,AuCl),因此与离子交换纯化相比具有更好的通用性,并且在单颗粒分析之前去除盐和大分子具有广阔的前景。