TY - JOUR
T1 - Surface hydrophobicity governs collision dynamics of emulsion droplets on bare and SAMs-modified electrodes
AU - Gao, Jingwei
AU - Du, Minshu
AU - Zhang, Lizhu
AU - Liu, Feng
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2026/2/1
Y1 - 2026/2/1
N2 - Single-entity electrochemistry (SEE) provides abundant information at the single-particle level. The applications of self-assembled monolayers (SAMs) modified electrodes further improve the sensitivity and selectivity of electrodes in SEE. However, soft particles collision at the SAMs-modified electrodes have rarely been studied, the surface chemistry effect of which also remains unclear. Here, dynamic interactions between o/w-type nitrobenzene emulsion droplets and bare Au, bare C and SAMs-modified Au UMEs, as well as electron transfer (ET) kinetics were investigated by SEE. Three important conclusions have be obtained: (1) Soft particle-mediated ET: emulsion droplets colliding on the SAMs-Au UME could trigger and mediate ET by tunneling through the insulating SAMs. (2) Surface hydrophobicity effect: sharp collision current spikes changed to be single- or multi-peaks with the prolonged residence time in the later stage of measurement on the hydrophobic C UME and SAMs-Au UME, while kept consistent on the hydrophilic Au UME. (3) Hydrophobicity modulation mechanism: organic layers form and stay on the hydrophobic surface of the electrode due to the accumulation of the colliding emulsions, which hinder the ET via tunneling. This study highlights the hydrophobicity effect on the dynamic emulsion-electrode interaction and ET kinetics, which not only enriches the knowledge of SEE but also enlightens the design of modified electrodes and electrochemical sensors.
AB - Single-entity electrochemistry (SEE) provides abundant information at the single-particle level. The applications of self-assembled monolayers (SAMs) modified electrodes further improve the sensitivity and selectivity of electrodes in SEE. However, soft particles collision at the SAMs-modified electrodes have rarely been studied, the surface chemistry effect of which also remains unclear. Here, dynamic interactions between o/w-type nitrobenzene emulsion droplets and bare Au, bare C and SAMs-modified Au UMEs, as well as electron transfer (ET) kinetics were investigated by SEE. Three important conclusions have be obtained: (1) Soft particle-mediated ET: emulsion droplets colliding on the SAMs-Au UME could trigger and mediate ET by tunneling through the insulating SAMs. (2) Surface hydrophobicity effect: sharp collision current spikes changed to be single- or multi-peaks with the prolonged residence time in the later stage of measurement on the hydrophobic C UME and SAMs-Au UME, while kept consistent on the hydrophilic Au UME. (3) Hydrophobicity modulation mechanism: organic layers form and stay on the hydrophobic surface of the electrode due to the accumulation of the colliding emulsions, which hinder the ET via tunneling. This study highlights the hydrophobicity effect on the dynamic emulsion-electrode interaction and ET kinetics, which not only enriches the knowledge of SEE but also enlightens the design of modified electrodes and electrochemical sensors.
KW - Electron-transfer kinetics
KW - Emulsion
KW - Hydrophobicity
KW - Self-assembled monolayers (SAMs)
KW - Single-entity electrochemistry
UR - https://www.scopus.com/pages/publications/105015893858
U2 - 10.1016/j.talanta.2025.128858
DO - 10.1016/j.talanta.2025.128858
M3 - 文章
AN - SCOPUS:105015893858
SN - 0039-9140
VL - 298
JO - Talanta
JF - Talanta
M1 - 128858
ER -