State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, People's Republic of China.
Institute of Nanochemistry and Nanobiology, School of Environmental and Chemical Engineering, Shanghai University, Shanghai 200444, People's Republic of China.
J Am Chem Soc. 2021 Nov 10;143(44):18511-18518. doi: 10.1021/jacs.1c07827. Epub 2021 Oct 26.
Electrogenerated chemiluminescence microscopy (ECLM) provides a real-time imaging approach to visualize the surface-dependent catalytic activity of nanocatalysts, which helps to rationalize the design of catalysts. In this study, we first propose super-resolution ECLM that could measure the facet- and site-specific activities of a single nanoparticle with nanometer resolution. The stochastic nature of the ECL emission makes the generation of photons obey Poisson statistics, which fits the requirement of super-resolution radial fluctuation (SRRF). By processing an SRRF algorithm, the spatial resolution of ECL images achieved ca. 100 nm, providing more abundant details on electrocatalytic reactivities at the subparticle level. Beyond conventional wide-field ECL imaging, super-resolution ECLM provided the spatial distribution of catalytic activities at a Au nanorod and nanoplate with scales of a few hundred nanometers. It helped uncover the facet- and defect-dependent surface activity, as well as the dynamic fluctuation of reactivity patterns on single nanoparticles. The super-resolution ECLM provides high spatiotemporal resolution, which shows great potential in the field of catalysis, biological imaging, and single-entity analysis.
电致化学发光显微镜(ECLM)提供了一种实时成像方法,可以可视化纳米催化剂的表面依赖性催化活性,有助于合理设计催化剂。在这项研究中,我们首次提出了超分辨 ECLM,可以以纳米分辨率测量单个纳米粒子的晶面和点位特异性活性。ECL 发射的随机性使得光子的产生遵循泊松统计,这符合超分辨径向波动(SRRF)的要求。通过处理 SRRF 算法,ECL 图像的空间分辨率达到约 100nm,在亚粒子水平上提供了更多关于电催化反应性的丰富细节。超越传统的宽场 ECL 成像,超分辨 ECLM 提供了金纳米棒和纳米板的催化活性的空间分布,其尺度为数百纳米。它有助于揭示晶面和缺陷依赖性表面活性,以及单个纳米粒子上反应性模式的动态波动。超分辨 ECLM 提供了高时空分辨率,在催化、生物成像和单实体分析领域具有巨大的潜力。