Ti3C2T x MXene-Enhanced Paper-Based Ion-Selective Electrodes for Sweat Sodium Monitoring

Abstract Electrolyte balance plays a fundamental role in maintaining physiological homeostasis, as ionic fluctuations regulate cellular excitability, osmotic gradients, and neuromuscular signaling. Among electrolytes, sodium (Na+) is a critical biomarker for hydration status and several pathological conditions, including dehydration and cystic fibrosis. Here, this is the first report of Ti3C2Tx MXene integrated as a solid-contact transducer on a paper-based screen-printed electrode (MPSPE) for ion-selective sensing of Na+ in sweat. The platform combines the sustainability and intrinsic capillarity of paper substrates with the exceptional electrical conductivity and surface reactivity of Ti3C2Tx MXene. Prior to MXene deposition, oxygen plasma treatment was applied to improve surface hydrophilicity and promote homogeneous film formation. The optimized configuration, based on office paper modified with 3 mg mL–1 MXene, exhibited a near-Nernstian slope of 0.0637 V/decade and an excellent linear correlation (R2 = 0.98) over the tested Na+ range (1–150 mM). The calculated limit of detection (LOD) and limit of quantification (LOQ) were 0.35 mM and 1.16 mM, respectively, while the coefficient of variation (%CV) was found to be 7.2%, confirming outstanding repeatability. The electrode demonstrated high selectivity toward Na+ over K+, Mg2+, and Ca2+ (log KpotNa,j < −0.5). Validation with real sweat samples revealed an excellent correlation with the liquid chromatography–tandem mass spectrometry (LC–MS/MS) reference method (R2 = 0.96, mean correlation ≈ 99%). These results highlight the potential of MXene-modified paper electrodes as a low-cost, disposable, and environmentally friendly analytical platform for point-of-care electrolyte monitoring.

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Publication Details

Journal
ACS Measurement Science Au
Published
2026-09-22
DOI
https://doi.org/10.1021/acsmeasuresciau.6c00137
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
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article

Ti3C2T x MXene-Enhanced Paper-Based Ion-Selective Electrodes for Sweat Sodium Monitoring

Wanda Cimmino, Md Abu Zahed, Flavia Vitale, Michele Spinelli et al.
ACS Measurement Science Au
Advanced Sensor and Energy Harvesting Materials
article

Ti3C2T x MXene-Enhanced Paper-Based Ion-Selective Electrodes for Sweat Sodium Monitoring

Wanda Cimmino, Md Abu Zahed, Flavia Vitale, Michele Spinelli, Angela Amoresano, Stefano Cinti, Jimin Jung
article en

Abstract

Abstract Electrolyte balance plays a fundamental role in maintaining physiological homeostasis, as ionic fluctuations regulate cellular excitability, osmotic gradients, and neuromuscular signaling. Among electrolytes, sodium (Na+) is a critical biomarker for hydration status and several pathological conditions, including dehydration and cystic fibrosis. Here, this is the first report of Ti3C2Tx MXene integrated as a solid-contact transducer on a paper-based screen-printed electrode (MPSPE) for ion-selective sensing of Na+ in sweat. The platform combines the sustainability and intrinsic capillarity of paper substrates with the exceptional electrical conductivity and surface reactivity of Ti3C2Tx MXene. Prior to MXene deposition, oxygen plasma treatment was applied to improve surface hydrophilicity and promote homogeneous film formation. The optimized configuration, based on office paper modified with 3 mg mL–1 MXene, exhibited a near-Nernstian slope of 0.0637 V/decade and an excellent linear correlation (R2 = 0.98) over the tested Na+ range (1–150 mM). The calculated limit of detection (LOD) and limit of quantification (LOQ) were 0.35 mM and 1.16 mM, respectively, while the coefficient of variation (%CV) was found to be 7.2%, confirming outstanding repeatability. The electrode demonstrated high selectivity toward Na+ over K+, Mg2+, and Ca2+ (log KpotNa,j < −0.5). Validation with real sweat samples revealed an excellent correlation with the liquid chromatography–tandem mass spectrometry (LC–MS/MS) reference method (R2 = 0.96, mean correlation ≈ 99%). These results highlight the potential of MXene-modified paper electrodes as a low-cost, disposable, and environmentally friendly analytical platform for point-of-care electrolyte monitoring.

ACS Measurement Science Au
Temple College (US), California University of Pennsylvania (US), Federico II University Hospital (IT), Philadelphia VA Medical Center (US), Temple University, Japan (JP), BioElectronics (United States) (US), University of Naples Federico II (IT), University of Pennsylvania (US), Temple University (US)
Life in Land, Responsible consumption and production
Openalex Percentile: Top 20%
Advanced Sensor and Energy Harvesting Materials
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