论文标题

评估从化学等效宏观表面的液体界面上纳米颗粒浸入深度的评估

Assessment of nanoparticle immersion depth at liquid interfaces from chemically equivalent macroscopic surfaces

论文作者

Smits, Joeri, Giri, Rajendra Prasad, Shen, Chen, Mendonça, Diogo, Murphy, Bridget, Huber, Patrick, Rezwan, Kurosch, Maas, Michael

论文摘要

假设:我们测试是否可以从平面底物上的无柄降液滴型宏观接触角(MCAS)中伸出纳米颗粒(NP)(NP)(NP),假设纳米颗粒和Macroscopic substrates均具有化学的电力,并且具有相同的电力,则在平面底物上脱颖而出。实验:将纯二氧化硅(SIO2)和氨基端二氧化硅(APTES-SIO2)NPS与具有极低粗糙度的宏观表面进行比较(均方根[RMS]粗糙度<= 2 nm)或由NP的密封层(RMS粗糙度约35 nm)确定的粗糙度。通过通过电泳光散射和通过流电流分析比较NP的电动电势来评估表面化学的等效性。宏观底物的润湿性是通过前进(ACA)和后退的接触角(RCA)和原位同步X射线反射率(XRR)获得的,该反射率(XRR)由液体界面的NP润湿性提供。发现:通常,平滑表面上的RCA提供了NP润湿特性的良好估计。但是,单独的MCA无法预测纯SIO2纳米颗粒的情况,从而阻止NP隔离的吸附屏障。该策略极大地促进了评估NP的润湿特性,例如乳液配方,浮选或水修复等应用。

Hypothesis: We test whether the wettability of nanoparticles (NPs) straddling at an air/water surface or oil/water interface can be extrapolated from sessile drop-derived macroscopic contact angles (mCAs) on planar substrates, assuming that both the nanoparticles and the macroscopic substrates are chemically equivalent and feature the same electrokinetic potential. Experiments: Pure silica (SiO2) and amino-terminated silica (APTES-SiO2) NPs are compared to macroscopic surfaces with extremely low roughness (root mean square [RMS] roughness <= 2 nm) or a roughness determined by a close-packed layer of NPs (RMS roughness about 35 nm). Equivalence of the surface chemistry is assessed by comparing the electrokinetic potentials of the NPs via electrophoretic light scattering and of the macroscopic substrates via streaming current analysis. The wettability of the macroscopic substrates is obtained from advancing (ACAs) and receding contact angles (RCAs) and in situ synchrotron X-ray reflectivity (XRR) provided by the NP wettability at the liquid interfaces. Findings: Generally, the RCA on smooth surfaces provides a good estimate of NP wetting properties. However, mCAs alone cannot predict adsorption barriers that prevent NP segregation to the interface, as is the case with the pure SiO2 nanoparticles. This strategy greatly facilitates assessing the wetting properties of NPs for applications such as emulsion formulation, flotation, or water remediation.

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