Hwang Jaemin, Sung Minchul, Seo Bokgi, Shin Kyounghee, Lee Jin Yong, Park Bum Jun, Kim Jin Woong
School of Chemical Engineering, Sungkyunkwan University, Suwon 16419, Republic of Korea.
KIURI (Korea Initiative for fostering University of Research & Innovation) Research Group, Sungkyunkwan University, Suwon 16419, Republic of Korea.
ACS Appl Mater Interfaces. 2021 Feb 17;13(6):7664-7671. doi: 10.1021/acsami.0c18116. Epub 2021 Feb 3.
A platform is introduced for bilayered coacervation of oppositely charged nanoplatelets (NPLs) at the oil-water interface. To this end, we synthesized two types of zirconium hydrogen phosphate (ZrHP) NPLs, cationically charged NPLs (CNPLs), and anionically charged NPLs (ANPLs) by conducting surface-initiated atom transfer radical polymerization. Taking advantage of the platelet geometry and controlled wettability, we demonstrated that ANPLs and CNPLs coacervate themselves to form a bilayered NPL membrane at the interface, which was directly confirmed by confocal laser scanning microscopy. Via theoretical consideration using the hit-and-miss Monte Carlo method, we determined that electrostatic attraction-driven coacervation of ANPLs and CNPLs at the interface shows a minimum attachment energy of ∼ -10 T, which is comparable to the cases where NPLs charged with the same type of ions are attached. Finally, this unique and novel interfacial coacervation behavior allowed us to develop a pH-responsive smart Pickering emulsion system.
介绍了一种用于在油水界面上对带相反电荷的纳米片(NPLs)进行双层凝聚的平台。为此,我们通过进行表面引发的原子转移自由基聚合反应,合成了两种类型的磷酸氢锆(ZrHP)NPLs,即带阳离子电荷的NPLs(CNPLs)和带阴离子电荷的NPLs(ANPLs)。利用血小板的几何形状和可控的润湿性,我们证明了ANPLs和CNPLs在界面处凝聚形成双层NPL膜,这通过共聚焦激光扫描显微镜直接得到证实。通过使用命中与未命中蒙特卡罗方法进行理论考虑,我们确定界面处ANPLs和CNPLs的静电吸引驱动凝聚显示出约-10 T的最小附着能量,这与带相同类型离子电荷的NPLs附着的情况相当。最后,这种独特新颖的界面凝聚行为使我们能够开发一种pH响应型智能皮克林乳液体系。