Electrochemistry Application — Highly sensitive electrochemiluminescence glucose sensor under alkaline conditions based on glucose oxidase@conductive metal-organic framework nanocapsules

Measurement evidence

Electrochemistry Application

Highly sensitive electrochemiluminescence glucose sensor under alkaline conditions based on glucose oxidase@conductive metal-organic framework nanocapsules · Mao M., Li L., Huang C. et al. · Sensors and Actuators B: Chemical · 2025 · 137595

2 measurement groups · 2 results

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

Luminol/H2O2 ECL background versus electrolyte pH

luminol/H2O2 electrolyte without MOF · Model

40 uM luminol, 10 uM H2O2 and 10 uM glucose in electrolytes with different pH values.

Geometry
0-1 V scan, 100 mV/s, photomultiplier tube -800 V
Context
model ECL solution without MOF catalyst
Measurement source
p005 · Fig. 3 caption · Fig. 3B
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
selected electrolyte pH for analyte measurementMarked as a best value within this paperpH = 10.0Text
Exact Reported
p006 · 3.4 Optimization of reaction conditions · Fig. 3B

Luminol ECL glucose sensing versus pH

GOx@Zn-HHTP ECL glucose sensing dispersion · Unknown

Free GOx and GOx@Zn-HHTP separately added to electrolytes with different pH, followed by luminol and glucose; 10 min reaction before ECL testing.

Geometry
0-1 V scan, 100 mV/s, photomultiplier tube -800 V
Context
GOx-loaded composite vs free GOx control
Measurement source
p003 · 3.3 Possibility of the development glucose ECL sensor · Fig. 2C
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
GOx@Zn-HHTP ECL surpasses free GOx at pHpH 9.5Text
Exact Reported
p003 · 3.3 Possibility of the development glucose ECL sensor · Fig. 2C