A dual-functional cuprum coordination framework for high proton conduction and electrochemical dopamine detection.
Mingxia ZhangWei TanXiaodan WuChengan WanChen WenLei FengFeng ZhangFengyu QuPublished in: Mikrochimica acta (2023)
The present study selected 5, 5'-((6-(ethylamino)-1, 3, 5-triazine-2, 4-diyl) bis(azanediyl))diisophthalic acid (H 4 EATDIA) as ligand and an amino-functionalized cuprum-based MOF (EA-JUC-1000), successfully synthesized by microwave-assisted method, for proton conduction and dopamine sensing applications. In order to enhance the proton-conducting potential of EA-JUC-1000, the Brönsted acid (BA) encapsulated composites (BA@EA-JUC-1000) are dopped into chitosan (CS) to form a series of hybrid membranes (BA@EA-JUC-1000/CS). The impedance results display that the best proton conductivity of CF 3 SO 3 H@EA-JUC-1000/CS-8% reaches up to 1.23 × 10 -3 S∙cm -1 at 338 K and ~ 98% RH, 2.6-fold than that of CS. Moreover, the EA-JUC-1000 is in-situ combined with reduced graphene oxide (rGO) (rGO/EA-JUC-1000), which makes EA-JUC-1000 have a wide detection range (0.1 ~ 500 μM) and a low limit of detection (50 nM), together with good anti-interference performance, reproducibility and repeatability. In addition, the electrochemical sensing method has been successfully applied to detect DA in bovine serum samples. The dual-functional MOF-based hybrid membrane and composites including proton conduction and DA sensing would provide an example of practical application for MOFs.
Keyphrases
- reduced graphene oxide
- gold nanoparticles
- label free
- loop mediated isothermal amplification
- electron transfer
- ionic liquid
- drug delivery
- real time pcr
- molecularly imprinted
- metabolic syndrome
- magnetic resonance imaging
- risk assessment
- photodynamic therapy
- quantum dots
- sensitive detection
- visible light
- high resolution
- simultaneous determination