Shin Dongha, Seo Hoyoung, Jhe Wonho
Center for 0D Nanofluidics, Institute of Applied Physics, Department of Physics and Astronomy, Seoul National University, Seoul 08826, Republic of Korea.
Division of Fine Chemistry and Engineering, College of Natural Science, Pai Chai University, Daejeon 35345, Republic of Korea.
ACS Cent Sci. 2020 Nov 25;6(11):2079-2087. doi: 10.1021/acscentsci.0c01009. Epub 2020 Sep 30.
Hydration is ubiquitous in any kind of water-substance interaction such as in various interfacial and biological processes. Despite substantial progress made to date, however, still less explored is the hydration behavior on complex heterogeneous surfaces, such as the water surrounding the protein, which requires a platform that enables systematic investigation at the atomic scale. Here, we realized a heterogeneous self-assembled monolayer system that allows both controllable mixing with hydrophobic or hydrophilic groups and precise distance control of the functional carboxyl groups from the surface by methylene spacer groups. Using surface-enhanced Raman spectroscopy (SERS), we first demonstrated the hydrophobic (or hydrophilic) mixing ratio-dependent p variation of the carboxyl group. Interestingly, we observed a counterintuitive, non-monotonic behavior that a fractionally mixed hydrophobic group can induce significant enhancement of dielectric strength of the interfacial water. In particular, such a fractional mixing substantially decreases the amide coupling efficiency at the surface, as manifested by the corresponding p decrease. The SERS-based platform we demonstrated can be widely applied for atomically precise control and molecular-level characterization of hydration water on various heterogeneous surfaces of biological and industrial importance.
水合作用在任何一种水与物质的相互作用中都普遍存在,例如在各种界面和生物过程中。然而,尽管迄今为止已经取得了重大进展,但对于复杂异质表面上的水合行为,例如蛋白质周围的水,仍探索较少,这需要一个能够在原子尺度上进行系统研究的平台。在这里,我们实现了一种异质自组装单分子层系统,该系统既允许与疏水或亲水基团进行可控混合,又能通过亚甲基间隔基团精确控制功能性羧基与表面的距离。使用表面增强拉曼光谱(SERS),我们首先证明了羧基的疏水(或亲水)混合比依赖性p变化。有趣的是,我们观察到一种违反直觉的非单调行为,即部分混合的疏水基团可以显著增强界面水的介电强度。特别是,这种部分混合会显著降低表面的酰胺偶联效率,相应的p降低就体现了这一点。我们展示的基于SERS的平台可广泛应用于对具有生物和工业重要性的各种异质表面上的水合水进行原子级精确控制和分子水平表征。