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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Observing Transient Bipolar Electrochemical Coupling on Single Nanoparticles Translocating through a Nanopore
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Observing Transient Bipolar Electrochemical Coupling on Single Nanoparticles Translocating through a Nanopore

机译:通过纳米孔翻转单纳米粒子的瞬时双极电化学耦合

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We report the observation of transient bipolar electrochemical coupling on freely moving 40 nm silver nanoparticles. The use of an asymmetric nanoelectrochemical environment at the nanopore orifice, for example, an acid inside the pipette and halide ions in the bulk, enabled us to observe unusually large current blockages of single Ag nanoparticles. We attribute these current blockages to the formation of H-2 nanobubbles on the surface of Ag nanoparticles due to the coupled faradaic reactions, in which the reduction of protons and water is coupled to the oxidation of Ag and water under potentials higher than 1 V. The appearance of large current blockages was strongly dependent on the applied voltage and the choice of anions in the bulk solution. The correlation between large current blockages with the oxidation of Ag nanoparticles and their nanopore translocation was further supported by simultaneous fluorescence and electric recordings. This study demonstrates that transient bipolar electrochemistry can take place on small metal nanoparticles below 50 nm when they pass through nanopores where the electric field is highly localized. The use of a nanopore and the resistive-pulse sensing method to study transient bipolar electrochemistry of nanoparticles may be extended to future studies in ultrafast electrochemistry, nanocatalyst screening, and gas nucleation on nanoparticles.
机译:我们在自由移动40nm银纳米粒子上报道了瞬态双极电化学耦合的观察。在纳米孔孔口使用的不对称纳米电化学环境,例如散装中的移液管和卤化物离子内的酸,使我们能够观察单个Ag纳米颗粒的异常大的电流堵塞。我们将这些电流堵塞归因于由于耦合的游览反应而在Ag纳米粒子表面上形成H-2纳米泡的形成,其中质子和水的还原与Ag和水的氧化在高于1V的电位下偶联。大电流堵塞的外观强烈依赖于施加的电压和散装溶液中阴离子的选择。通过同时荧光和电动记录进一步支持具有Ag纳米颗粒的氧化和其纳米孔易位的大电流堵塞之间的相关性。该研究表明,当它们通过电场高度局部时,瞬时双极电化学可以在低于50nm以下的小金属纳米粒子上进行。使用纳米孔和电阻脉冲感测方法研究纳米颗粒的瞬时双极电化学,可以扩展到纳米颗粒上的超快电化学,纳米催化剂筛选和气体成核中的未来研究。

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