McKetta Department of Chemical Engineering, University of Texas at Austin, Austin, TX, USA.
McKetta Department of Chemical Engineering, University of Texas at Austin, Austin, TX, USA.
J Colloid Interface Sci. 2023 Jan 15;630(Pt B):828-843. doi: 10.1016/j.jcis.2022.10.102. Epub 2022 Oct 29.
The surface of silica nanoparticles (NP) may be covalently grafted with two amino ligands to balance colloidal stability and interfacial activity via formation of in situ Janus particles. The modified NP may be combined with a like-charged diamine surfactant to create ultra-stable CO foam at low NP concentrations.
The NP colloidal stability was measured up to 80 °C in 230 g/L TDS brine with dynamic light scattering. The NP surface was characterized using zeta potential, TEM, TGA, conductometric and potentiometric titrations, NMR and interfacial measurement. CO/brine foam was generated at 60-80 °C and 15 MPa and apparent viscosity was measured vs foam quality. The foam stability was measured in-situ with an optical microscope.
Upon adding only 0.1 wt% NP, ultra-stable CO foam was observed at 60 °C with a bubble coarsening rate 3 orders of magnitude lower than with surfactant alone. Foam bubbles were spherical with NP present, but became polyhedral for the much less stable surfactant-only foams. For this novel like-charged surfactant-NP system, the limited surfactant adsorption on the NP resulted in NP stabilized CO foam, while maintaining NP colloidal stability at high surfactant concentrations and high salinity, providing a new perspective of NP-surfactant design.
通过形成原位的 Janus 粒子,可以将硅纳米粒子 (NP) 的表面通过共价键接枝两个氨基配体,以平衡胶体稳定性和界面活性。通过将改性 NP 与带相同电荷的二胺表面活性剂结合,可以在 NP 浓度较低的情况下创造出超稳定的 CO 泡沫。
通过动态光散射,在 230g/L TDS 盐水中测量 NP 的胶体稳定性,直至 80°C。使用动电电位、TEM、TGA、电导和电位滴定、NMR 和界面测量来表征 NP 表面。在 60-80°C 和 15MPa 下生成 CO/盐水泡沫,并测量表观粘度与泡沫质量的关系。使用光学显微镜原位测量泡沫稳定性。
仅添加 0.1wt%的 NP 时,在 60°C 下观察到超稳定的 CO 泡沫,其气泡粗化速率比单独使用表面活性剂低 3 个数量级。NP 存在时,泡沫中的气泡为球形,但对于稳定性差得多的仅含表面活性剂的泡沫,则为多面体。对于这种新型的带相同电荷的表面活性剂-NP 体系,有限的表面活性剂吸附在 NP 上导致 NP 稳定的 CO 泡沫,同时在高表面活性剂浓度和高盐度下保持 NP 胶体稳定性,为 NP-表面活性剂设计提供了新的视角。