Electrochemically Driven Luminescence without Liquid Electrolyte: A Sensing Platform via Eutectic Gallium−Indium Solid-State Junctions

Abstract Electrochemiluminescence (ECL) is a powerful sensing technique but typically relies on liquid electrolytes and multi-electrode configurations, limiting device miniaturization and integration. Here, we report a solid-state electrochemically driven luminescent sensing platform based on two-electrode junctions comprising an indium tin oxide bottom electrode, a Ru(bpy)32+−TPrA@Nafion active layer (TPrA: tripropylamine), and a soft eutectic gallium−indium (EGaIn) top electrode. Nafion serves as a porous host matrix that immobilizes the luminophore and co-reactant while facilitating analyte uptake, whereas EGaIn provides a simple conformal electrical contact for solid-state operation. Despite the absence of a liquid electrolyte during electrical excitation, the junctions retain key characteristics of classical Ru(bpy)32+ electrochemistry. The luminescence is enhanced by the co-reactant TPrA and quenched by dopamine (DA), enabling quantitative sensing based on modulation of the emission intensity. The platform exhibits a linear response to dopamine over a concentration range of 1.0 × 10−10−1.0 × 10−4 M with a detection limit of 5.1 × 10−11 M, together with excellent reproducibility, selectivity, operational stability, and satisfactory recovery in human serum samples. These results demonstrate that ECL-inspired sensing chemistry can be implemented in a solid-state device architecture, providing a promising strategy for integrated luminescent sensing platforms and miniaturized analytical devices.

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Publication Details

Journal
Analytical Chemistry
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.analchem.6c04350
Primary Topic
Electrochemical sensors and biosensors
Type
article
Field-Weighted Citation Impact
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article

Electrochemically Driven Luminescence without Liquid Electrolyte: A Sensing Platform via Eutectic Gallium−Indium Solid-State Junctions

Christian Albertus Nijhuis, Jiancong Ni, Weiqiang Yang, Zhenyu Lin et al.
Analytical Chemistry
Electrochemical sensors and biosensors
article

Electrochemically Driven Luminescence without Liquid Electrolyte: A Sensing Platform via Eutectic Gallium−Indium Solid-State Junctions

Christian Albertus Nijhuis, Jiancong Ni, Weiqiang Yang, Zhenyu Lin, Xiaoping Chen, Shi Huang, Zhiping Song
article en

Abstract

Abstract Electrochemiluminescence (ECL) is a powerful sensing technique but typically relies on liquid electrolytes and multi-electrode configurations, limiting device miniaturization and integration. Here, we report a solid-state electrochemically driven luminescent sensing platform based on two-electrode junctions comprising an indium tin oxide bottom electrode, a Ru(bpy)32+−TPrA@Nafion active layer (TPrA: tripropylamine), and a soft eutectic gallium−indium (EGaIn) top electrode. Nafion serves as a porous host matrix that immobilizes the luminophore and co-reactant while facilitating analyte uptake, whereas EGaIn provides a simple conformal electrical contact for solid-state operation. Despite the absence of a liquid electrolyte during electrical excitation, the junctions retain key characteristics of classical Ru(bpy)32+ electrochemistry. The luminescence is enhanced by the co-reactant TPrA and quenched by dopamine (DA), enabling quantitative sensing based on modulation of the emission intensity. The platform exhibits a linear response to dopamine over a concentration range of 1.0 × 10−10−1.0 × 10−4 M with a detection limit of 5.1 × 10−11 M, together with excellent reproducibility, selectivity, operational stability, and satisfactory recovery in human serum samples. These results demonstrate that ECL-inspired sensing chemistry can be implemented in a solid-state device architecture, providing a promising strategy for integrated luminescent sensing platforms and miniaturized analytical devices.

Analytical Chemistry
Fuzhou University (CN), Minnan Normal University (CN), University of Twente (NL)
Openalex Percentile: Top 22%
Electrochemical sensors and biosensors
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