State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering , Nanjing University , Nanjing 210023 , China.
Anal Chem. 2019 Apr 2;91(7):4665-4671. doi: 10.1021/acs.analchem.9b00022. Epub 2019 Mar 13.
The past decade has witnessed theoretical and experimental debates on the extraordinary long lifetime and low contact angle of surface nanobubbles. While several kinds of imaging techniques have provided promising evidence on the lifetime and gaseous nature of single surface nanobubble, each of them suffered from its own limitations before a consensus can be reached. In the present work, we employ a recently developed surface plasmon resonance microscopy (SPRM) to nonintrusively visualize single sub-100-nm surface nanobubble without labeling for the first time. The quantitative dependence between optical signal and nanobubble volume allows for resolving the dissolution kinetics, which is a key for understanding the lifetime. A superlocalization method is further introduced to monitor the trajectory of its mass center during dissolution, which uncovers the stick-slip behavior in the early stage and the migration behavior in the late stage. The label-free, nonintrusive, quantitative and sensitive features of SPRM and the potential compatibility with atomic force microscopy shed new light on the long-standing puzzle behind surface nanobubbles.
过去十年见证了关于表面纳米气泡超长寿命和低接触角的理论和实验争论。虽然有几种成像技术为单表面纳米气泡的寿命和气体性质提供了有希望的证据,但在达成共识之前,每种技术都有其自身的局限性。在本工作中,我们首次使用最近开发的表面等离子体共振显微镜(SPRM)对无标记的单亚 100nm 表面纳米气泡进行非侵入式可视化。光学信号与纳米气泡体积之间的定量关系允许解析溶解动力学,这是理解寿命的关键。进一步引入了超定位方法来监测溶解过程中质心的轨迹,揭示了早期的粘滑行为和后期的迁移行为。SPRM 的无标记、非侵入式、定量和灵敏的特点以及与原子力显微镜的潜在兼容性,为表面纳米气泡背后的长期难题提供了新的见解。