Bai Silan, You Yongtao, Chen Xiangping, Liu Cheng, Wang Lishi
School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou510641, China.
Jewelry Institute, Guangzhou Panyu Polytechnic, Guangzhou511483, China.
Anal Chem. 2023 Jan 10. doi: 10.1021/acs.analchem.2c04744.
Herein, an approach to track the process of autorepeating bipolar reactions and hydrogen evolution reaction (HER) on a micro gold bipolar electrode (BPE) is established. Once blocking the channel of the sub-micropipette tip, the formed gold microparticle is polarized into the wireless BPE, which induces the dissolution of the gold at the anode and the HER at the cathode. The current response shows a periodic behavior with three regions: the bubble generation region (I), the bubble rupture/generation region (II), and the channel opening region (III). After a stable low baseline current of region I, a series of positive spike signals caused by single H nanobubbles rupture/generation are recorded standing for the beginning of region II. Meanwhile, the dissolution of the gold blocking at the orifice will create a new channel, increasing the baseline current for region III, where the synthesis of gold occurs again, resulting in another periodic response. Finite element simulations are applied to unveil the mechanism thermodynamically. In addition, the integral charge of the H nanobubbles in region II corresponds to the consumption of the anode gold. It simultaneously monitors autorepeating bipolar reactions of a single gold microparticle and HER of a single H nanobubble electrochemically, which reveals an insightful physicochemical mechanism in nanoscale confinement and makes the glass nanopore an ideal candidate to further reveal the heterogeneity of catalytic capability at the single particle level.
在此,建立了一种在微金双极电极(BPE)上跟踪自重复双极反应和析氢反应(HER)过程的方法。一旦阻塞亚微吸管尖端的通道,形成的金微粒就会被极化到无线BPE中,这会诱导阳极处的金溶解以及阴极处的析氢反应。电流响应呈现出具有三个区域的周期性行为:气泡产生区域(I)、气泡破裂/产生区域(II)和通道开放区域(III)。在区域I的稳定低基线电流之后,记录到由单个H纳米气泡破裂/产生引起的一系列正尖峰信号,这代表区域II的开始。同时,孔口处阻塞的金的溶解会形成一个新通道,增加区域III的基线电流,在该区域金再次合成,从而导致另一个周期性响应。应用有限元模拟从热力学角度揭示其机理。此外,区域II中H纳米气泡的积分电荷对应于阳极金的消耗。它能同时电化学监测单个金微粒的自重复双极反应和单个H纳米气泡的析氢反应,这揭示了纳米尺度限制下深刻的物理化学机理,并使玻璃纳米孔成为进一步揭示单颗粒水平催化能力异质性的理想候选者。