Zhu Hui, Jiang Dechen, Zhu Jun-Jie
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University Nanjing 210093 China
Chem Sci. 2021 Feb 16;12(13):4794-4799. doi: 10.1039/d0sc06967a.
Here, the electrocatalytic activity of a single graphene sheet is mapped using electrochemiluminescence (ECL) microscopy with a nanometer resolution. The achievement of this high-spatial imaging relies on the varied adsorption of hydrogen peroxide at different sites on the graphene surface, leading to unsynchronized ECL emission. By shortening the exposure time to 0.2 ms, scattered ECL spots are observed in the ECL image that are not overlaid with the spots in the consecutive images. Accordingly, after stacking all the images into a graph, the ECL intensity of each pixel could be used to reflect the electrocatalytic features of the graphene surface with a resolution of 400 nm. This novel ECL method efficiently avoids the long-standing problem of classic ECL microscopy regarding the overlap of ECL emissions from adjacent regions and enables the nanometer spatial resolution of ECL microscopy for the first time.
在此,利用具有纳米分辨率的电化学发光(ECL)显微镜对单个石墨烯片的电催化活性进行了成像。这种高空间分辨率成像的实现依赖于过氧化氢在石墨烯表面不同位置的不同吸附,从而导致ECL发射不同步。通过将曝光时间缩短至0.2毫秒,在ECL图像中观察到散射的ECL斑点,这些斑点与连续图像中的斑点不重叠。因此,将所有图像堆叠成一张图后,每个像素的ECL强度可用于反映石墨烯表面的电催化特征,分辨率为400纳米。这种新颖的ECL方法有效地避免了经典ECL显微镜长期存在的相邻区域ECL发射重叠问题,并首次实现了ECL显微镜的纳米空间分辨率。