Electrochemical sensing of nitric oxide with functionalized graphene electrodes

Liu, YM; Punckt, C; Pope, MA; Gelperin, A; Aksay, IA

HERO ID

2232851

Reference Type

Journal Article

Year

2013

Language

English

PMID

24206401

HERO ID 2232851
In Press No
Year 2013
Title Electrochemical sensing of nitric oxide with functionalized graphene electrodes
Authors Liu, YM; Punckt, C; Pope, MA; Gelperin, A; Aksay, IA
Journal ACS Applied Materials & Interfaces
Volume 5
Issue 23
Page Numbers 12624-12630
Abstract The intrinsic electrocatalytic properties of functionalized graphene sheets (FGSs) in nitric oxide (NO) sensing are determined by cyclic voltammetry with FGS monolayer electrodes. The degrees of reduction and defectiveness of the FGSs are varied by employing different heat treatments during their fabrication. FGSs with intermediate degrees of reduction and high Raman ID to IG peak ratios exhibit an NO oxidation peak potential of 794 mV (vs 1 M Ag/AgCl), closely matching values obtained with a platinized Pt control (791 mV) as well as recent results from the literature on porous or biofunctionalized electrodes. We show that the peak potential obtained with FGS electrodes can be further reduced to 764 mV by incorporation of electrode porosity using a drop-casting approach, indicating a stronger apparent electrocatalytic effect on porous FGS electrodes as compared to platinized Pt. Taking into consideration effects of electrode morphology, we thereby demonstrate that FGSs are intrinsically as catalytic toward NO oxidation as platinum. The lowered peak potential of porous FGS electrodes is accompanied by a significant increase in peak current, which we attribute either to pore depletion effects or an amplification effect due to subsequent electrooxidation reactions. Our results suggest that the development of sensor electrodes with higher sensitivity and lower detection limits should be feasible with FGSs.
Doi 10.1021/am403983g
Pmid 24206401
Wosid WOS:000328439600053
Is Certified Translation No
Dupe Override No
Comments Journal: ACS applied materials & interfaces ISSN: 1944-8252
Is Public Yes
Language Text English
Keyword nitric oxide; electrochemical sensing; intrinsic reactivity; functionalized graphene; porosity; electroanalysis