Su Hua, Fang Yimin, Chen Fangyuan, Wang Wei
State Key Laboratory of Analytical Chemistry for Life Science , School of Chemistry and Chemical Engineering , Nanjing University , Nanjing 210023 , China . Email:
Chem Sci. 2018 Jan 15;9(6):1448-1453. doi: 10.1039/c7sc04684g. eCollection 2018 Feb 14.
The capability of semiconductor nanomaterials to convert solar energy to chemical energy has led to many promising applications, for instance, photocatalyzed H generation. Studying this important photocatalytic reaction at the single nanocatalyst level provides a great opportunity to understand the microscopic reaction kinetics and mechanism by overcoming the chemical and structural heterogeneity among individuals. Here we report a fluorescence (FL) labeling strategy to visualize individual H nanobubbles that are generated at single CdS nanoparticles during photocatalysis. imaging of nanobubble growth kinetics allows for determination of the photocatalytic activity of single nanocatalysts, which was found to randomly alternate among high activity, low activity and inactive states. In addition to H nanobubbles, the present labeling strategy is also suitable for other types of gas nanobubbles. Since nanomaterial-catalyzed gas generation is widely involved in many important photochemical (water splitting), electrochemical (electrolysis) and chemical (nanomotors) reactions, the present work is promising for the general applicability of single nanoparticle catalysis in broad basic and industrial fields by lighting up nanobubbles under commercial and conventional FL microscopes.
半导体纳米材料将太阳能转化为化学能的能力已带来许多有前景的应用,例如光催化产氢。在单个纳米催化剂层面研究这一重要的光催化反应,为克服个体间的化学和结构异质性来理解微观反应动力学及机理提供了绝佳机会。在此,我们报告一种荧光(FL)标记策略,用于可视化光催化过程中在单个硫化镉纳米颗粒上产生的单个氢纳米气泡。对纳米气泡生长动力学的成像能够测定单个纳米催化剂的光催化活性,发现其在高活性、低活性和无活性状态之间随机交替。除了氢纳米气泡,目前的标记策略也适用于其他类型的气体纳米气泡。由于纳米材料催化的气体生成广泛涉及许多重要的光化学(水分解)、电化学(电解)和化学(纳米马达)反应,通过在商业和传统FL显微镜下照亮纳米气泡,本工作有望使单纳米颗粒催化在广泛的基础和工业领域具有普遍适用性。