School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, Suzhou, 215123, China.
Division of Advanced Nanomaterials, Suzhou Institute of Nano-tech and Nano-bionics, Chinese Academy of Sciences, Suzhou, 215123, China.
Small. 2021 Apr;17(14):e2007302. doi: 10.1002/smll.202007302. Epub 2021 Mar 14.
To explore nanocatalysts with high electro-catalytic performance and less loading of precious metals, efforts have been made to develop electrochemical methods with high spatial resolution at the single nanoparticle level. Herein, a highly sensitive single-nanoparticle coulometry method is successfully developed to study the electrochemical activity and oscillation of single PtTe nanocatalysts. Based on microbattery reactions involving the formic acid electro-oxidation and the deposition of Ag on the single PtTe nanocatalyst surface, this method enables the transition from the undetectable sub-fA electric signal of the formic acid electro-oxidation into strong localized surface plasmon resonance scattering signal of Ag detected by dark-field microscopy. The lowest limiting current for a single nanocatalyst is found to be as low as 25.8 aA. Different trends of activity versus the formic acid concentration and types of activity of the single nanocatalyst have been discovered. Unveiled frequency-amplitude graph shows that the two electrochemical oscillation modes of low frequency with high amplitude and vice versa coexist in a single PtTe nanocatalyst, indicating the abundantly smooth surfaces and defects of nanocatalysts. This conducted study will open up the new avenue for further behavioral and mechanistic investigation of more types of nanocatalysts in the electrochemistry community.
为了探索具有高电催化性能和低贵金属负载的纳米催化剂,人们努力开发具有高空间分辨率的单纳米粒子水平的电化学方法。在此,成功开发了一种高灵敏度的单纳米粒子库仑计量法,用于研究单 PtTe 纳米催化剂的电化学活性和振荡。基于涉及甲酸电氧化和 Ag 在单 PtTe 纳米催化剂表面沉积的微电池反应,该方法能够将甲酸电氧化的不可检测的亚 fA 电信号转换为 Ag 的强局部表面等离子体共振散射信号,通过暗场显微镜检测到。发现单纳米催化剂的最低极限电流低至 25.8 aA。已经发现了单纳米催化剂的活性与甲酸浓度的不同趋势和类型。揭示的频率-幅度图表明,在单个 PtTe 纳米催化剂中同时存在低频高幅度和相反的两种电化学振荡模式,表明纳米催化剂的表面非常光滑且存在缺陷。这项研究将为电化学领域中更多类型的纳米催化剂的进一步行为和机理研究开辟新途径。