Zhang Xue Hua, Maeda Nobuo, Hu Jun
J Phys Chem B. 2008 Nov 6;112(44):13671-5. doi: 10.1021/jp807515f. Epub 2008 Oct 9.
We studied the thermodynamic stability of interfacial gaseous states on atomically smooth highly ordered pyrolytic graphite (HOPG) in water using atomic force microscopy. Quasi-two-dimensional gas layers (micropancakes) required a higher supersaturation of gas than spherical-cap-shaped nanobubbles. The two forms of gas coexisted at a sufficiently high supersaturation of gas where one or more of the nanobubbles may sit on top of a micropancake. The micropancakes spontaneously coalesced with each other over time. After the coalescence of two neighboring micropancakes which each had had a nanobubble on top, one nanobubble grew at the expense of the other. We analyzed these results assuming temporal and local quasi-equilibrium conditions.
我们使用原子力显微镜研究了水中原子级光滑的高度有序热解石墨(HOPG)上界面气态的热力学稳定性。准二维气体层(微煎饼)比球形帽状纳米气泡需要更高的气体过饱和度。在足够高的气体过饱和度下,这两种气体形式共存,其中一个或多个纳米气泡可能位于微煎饼之上。随着时间的推移,微煎饼会自发地相互合并。在两个相邻的每个顶部都有一个纳米气泡的微煎饼合并后,一个纳米气泡以另一个为代价生长。我们在假设时间和局部准平衡条件下分析了这些结果。