Fernández-Trujillo Sergio, Sánchez-Cachero Armando, Guzmán Bernardo Francisco Javier, Rodríguez-Fariñas Nuria, Jiménez-Moreno María, Rodríguez Martín-Doimeadios Rosa Carmen
Department of Analytical Chemistry and Food Technology, Faculty of Environmental Sciences and Biochemistry, University of Castilla-La Mancha, Avenida Carlos III s/n, 45071, Toledo, Spain.
Anal Bioanal Chem. 2023 May;415(11):2113-2120. doi: 10.1007/s00216-022-04506-5. Epub 2023 Jan 5.
Electrical asymmetric-flow field-flow fractionation (EAF4) is a new and interesting analytical technique recently proposed for the characterization of metallic nanoparticles (NPs). It has the potential to simultaneously provide relevant information about size and electrical parameters, such as electrophoretic mobility (μ) and zeta-potential (ζ), of individual NP populations in an online instrumental setup with an array of detectors. However, several chemical and instrumental conditions involved in this technique are definitely influential, and only few applications have been proposed until now. In the present work, an EAF4 system has been used with different detectors, ultraviolet-visible (UV-vis), multi-angle light scattering (MALS), and inductively coupled plasma with triple quadrupole mass spectrometry (ICP-TQ-MS) for the characterization of gold, silver, and platinum NPs with both citrate and phosphate coatings. The behavior of NPs has been studied in terms of retention time and signal intensity under both positive and negative current with results depending on the coating. Carrier composition, particularly ionic strength, was found to be critical to achieve satisfactory recoveries and a reliable measurement of electrical parameters. Dynamic light scattering (DLS) has been used as a comparative technique for these parameters. The NovaChem surfactant mix (0.01%) showed a quantitative recovery (93 ± 1%) of the membrane, but the carrier had to be modified by increasing the ionic strength with 200 μM of NaCO to achieve consistent μ values. However, ζ was one order of magnitude lower in EAF4-UV-vis-MALS than in DLS, probably due to different electric processes in the channel. From a practical point of view, EAF4 technique is still in its infancy and further studies are necessary for a robust implementation in the characterization of NPs.
电不对称流场流分离技术(EAF4)是最近提出的一种用于表征金属纳米颗粒(NPs)的新型且有趣的分析技术。它有潜力在配备一系列探测器的在线仪器装置中,同时提供有关单个NP群体的尺寸和电学参数的相关信息,如电泳迁移率(μ)和zeta电位(ζ)。然而,该技术涉及的几个化学和仪器条件肯定有影响,到目前为止仅提出了少数应用。在本工作中,一个EAF4系统与不同的探测器联用,即紫外可见(UV-vis)、多角度光散射(MALS)和电感耦合等离子体与三重四极杆质谱(ICP-TQ-MS),用于表征具有柠檬酸盐和磷酸盐涂层的金、银和铂纳米颗粒。研究了在正电流和负电流下NP的保留时间和信号强度行为,结果取决于涂层。发现载体组成,特别是离子强度,对于实现令人满意的回收率和可靠的电学参数测量至关重要。动态光散射(DLS)已被用作这些参数的比较技术。NovaChem表面活性剂混合物(0.01%)显示膜的定量回收率为(93±1%),但必须通过用200μM的NaCO增加离子强度来改性载体,以获得一致的μ值。然而,EAF4-UV-vis-MALS中的ζ比DLS中的低一个数量级,这可能是由于通道中不同的电过程。从实际角度来看,EAF4技术仍处于起步阶段,对于在NP表征中稳健实施还需要进一步研究。