Electrochemistry Application — Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Measurement evidence

Electrochemistry Application

Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity · Liang C., Liu J., Zhang H. et al. · Chemical Engineering Journal · 2025 · 164477

5 measurement groups · 10 results

Reported values remain attached to the sample, method, conditions, extraction quality and source location that produced them.

Chronoamperometry and CV

Cu-HHTP electrode · Electrode

Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Context
anti-lipid biofouling electrochemical stability
Measurement source
6 · Section 3.2 · Fig. 3c
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
chronoamperometric current retention after sweat-lipid flowMarked as a best value within this paper98.6%Text
Exact Reported
5 · Section 3.2 · Fig. 3c
CV oxidation peak current retention after 16 min flowMarked as a best value within this paper99%Text
Exact Reported
5 · Section 3.2 · Fig. 3c inset

Chronoamperometry and CV

Cu-HHTP/OTS electrode · Electrode

Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Context
anti-lipid biofouling electrochemical stability
Measurement source
6 · Section 3.2 · Fig. 3c
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
chronoamperometric current retention after sweat-lipid flow53.9%Text
Exact Reported
5 · Section 3.2 · Fig. 3c
CV oxidation peak current retention after 16 min flow71%Text
Exact Reported
5 · Section 3.2 · Fig. 3c inset

Chronoamperometry and CV

Cu-THQ electrode · Electrode

Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Context
anti-lipid biofouling electrochemical stability
Measurement source
6 · Section 3.2 · Fig. 3c
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
chronoamperometric current retention after sweat-lipid flow69.4%Text
Exact Reported
5 · Section 3.2 · Fig. 3c
CV oxidation peak current retention after 16 min flow83%Text
Exact Reported
5 · Section 3.2 · Fig. 3c inset

Chronoamperometry and CV

Ni-HHTP electrode · Electrode

Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Context
anti-lipid biofouling electrochemical stability
Measurement source
6 · Section 3.2 · Fig. 3c
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
chronoamperometric current retention after sweat-lipid flow87.8%Text
Exact Reported
5 · Section 3.2 · Fig. 3c
CV oxidation peak current retention after 16 min flow87%Text
Exact Reported
5 · Section 3.2 · Fig. 3c inset

Chronoamperometry and CV

ZIF-8 electrode · Electrode

Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Context
anti-lipid biofouling electrochemical stability
Measurement source
6 · Section 3.2 · Fig. 3c
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
chronoamperometric current retention after sweat-lipid flow25.7%Text
Exact Reported
5 · Section 3.2 · Fig. 3c
CV oxidation peak current retention after 16 min flow63%Text
Exact Reported
5 · Section 3.2 · Fig. 3c inset