Jiangsu Key Laboratory for Design and Manufacture of Micro-nano Biomedical Instruments, School of Mechanical Engineering, Southeast University, Nanjing 211189, People's Republic of China.
Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, People's Republic of China.
Langmuir. 2021 Sep 7;37(35):10521-10528. doi: 10.1021/acs.langmuir.1c01504. Epub 2021 Aug 4.
Surface charges inside a nanopore determine the zeta potential and ion distributions and play a significant role in affecting ion transport and the sensitivity of detecting biomolecules. It is of great importance to study the fluctuation of surface charges with the salt concentration and pH in various applications of nanopores. Herein, we proposed a theoretical model to predict the surface charge density of a SiN nanopore, in which both silanol and amine groups were taken into account. It was demonstrated that the surface charge density in the SiN nanopore changes not only with pH but also with the salt concentration. The theoretical model could well predict the experimental results with different salt concentrations, pH values, and pore sizes. The effect of surface functional groups on the isopotential point (pH) of the SiN nanopore was also systematically studied. The results indicated that the silanol groups are major determinants of the surface charge, but the influences of the amine groups should not be ignored because the small number of amine groups can change pH dramatically. The pH value of the SiN nanopore was measured as 4.1, and the ratio of amine over silanol was ascertained as 0.013.
纳米孔内表面电荷决定了 Zeta 电位和离子分布,对影响离子传输和生物分子检测的灵敏度起着重要作用。研究纳米孔在各种应用中表面电荷随盐浓度和 pH 的波动情况非常重要。在此,我们提出了一个理论模型来预测 SiN 纳米孔的表面电荷密度,其中同时考虑了硅醇和胺基。结果表明,SiN 纳米孔的表面电荷密度不仅随 pH 值变化,还随盐浓度变化。该理论模型可以很好地预测不同盐浓度、pH 值和孔径的实验结果。还系统地研究了表面官能团对 SiN 纳米孔等电位点(pH)的影响。结果表明,硅醇基团是表面电荷的主要决定因素,但胺基团的影响不容忽视,因为少量的胺基团可以使 pH 值发生显著变化。测量得到 SiN 纳米孔的 pH 值为 4.1,确定胺基与硅醇基的比值为 0.013。