Interfacial Charge Regulation by Phosphate Adsorption on Indium Tin Oxide for Charge-Selective Electrochemical Sensing

Abstract Controlling interfacial charge without compromising mass transport remains a challenge in charge-selective electrochemical sensing. Here, we use phosphate adsorption on indium tin oxide (ITO) as a model system to investigate how specifically adsorbed anions regulate the apparent electron-transfer kinetics and enable charge-selective electrochemical sensing. Using three ferrocene derivatives with distinct charge states, we show that phosphate adsorption enhances the voltammetric response of cationic species while suppressing that of anionic species, in a manner strongly dependent on pH and phosphate speciation. To elucidate the underlying mechanism, we directly quantify shifts in the potential of zero charge using scanning electrochemical cell microscopy (SECCM) and correlate these measurements with the observed kinetic trends. Comparison of orthophosphate, pyrophosphate, and tripolyphosphate demonstrates that multidentate adsorption and higher anion charge produce progressively stronger electrostatic modulation. Leveraging this effect, we achieve charge-selective electro-oxidation of dopamine in the presence of ascorbic acid and uric acid, with oligophosphate adsorption further enhancing the discrimination of dopamine and yielding detection limits of 0.15 and 0.11 μM for pyrophosphate and tripolyphosphate, respectively. The reversibility of phosphate adsorption under mild alkaline treatment further establishes this approach as a simple and regenerable alternative to conventional film-based interface engineering.

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Journal
Analytical Chemistry
Published
2026-09-25
DOI
https://doi.org/10.1021/acs.analchem.6c02827
Primary Topic
Electrochemical Analysis and Applications
Type
article
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Interfacial Charge Regulation by Phosphate Adsorption on Indium Tin Oxide for Charge-Selective Electrochemical Sensing

Yuri Kim, Seung‐Ryong Kwon, Seol Baek, Jungwon Kim et al.
Analytical Chemistry
Electrochemical Analysis and Applications
article

Interfacial Charge Regulation by Phosphate Adsorption on Indium Tin Oxide for Charge-Selective Electrochemical Sensing

Yuri Kim, Seung‐Ryong Kwon, Seol Baek, Jungwon Kim, Jeongse Yun, Minjee Seo, Yerin Bang
article en

Abstract

Abstract Controlling interfacial charge without compromising mass transport remains a challenge in charge-selective electrochemical sensing. Here, we use phosphate adsorption on indium tin oxide (ITO) as a model system to investigate how specifically adsorbed anions regulate the apparent electron-transfer kinetics and enable charge-selective electrochemical sensing. Using three ferrocene derivatives with distinct charge states, we show that phosphate adsorption enhances the voltammetric response of cationic species while suppressing that of anionic species, in a manner strongly dependent on pH and phosphate speciation. To elucidate the underlying mechanism, we directly quantify shifts in the potential of zero charge using scanning electrochemical cell microscopy (SECCM) and correlate these measurements with the observed kinetic trends. Comparison of orthophosphate, pyrophosphate, and tripolyphosphate demonstrates that multidentate adsorption and higher anion charge produce progressively stronger electrostatic modulation. Leveraging this effect, we achieve charge-selective electro-oxidation of dopamine in the presence of ascorbic acid and uric acid, with oligophosphate adsorption further enhancing the discrimination of dopamine and yielding detection limits of 0.15 and 0.11 μM for pyrophosphate and tripolyphosphate, respectively. The reversibility of phosphate adsorption under mild alkaline treatment further establishes this approach as a simple and regenerable alternative to conventional film-based interface engineering.

Analytical Chemistry
Korea National University of Education (KR), Gyeongsang National University (KR), Sookmyung Women's University (KR)
Peace, Justice and strong institutions
Openalex Percentile: Top 29%
Electrochemical Analysis and Applications
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