Literature DB >> 26389138

Carbon nanospikes grown on metal wires as microelectrode sensors for dopamine.

Alexander G Zestos1, Cheng Yang, Christopher B Jacobs, Dale Hensley, B Jill Venton.   

Abstract

Carbon nanomaterials are advantageous as electrodes for neurotransmitter detection, but the difficulty of nanomaterials deposition on electrode substrates limits the reproducibility and future applications. In this study, we used plasma enhanced chemical vapor deposition (PECVD) to directly grow a thin layer of carbon nanospikes (CNS) on cylindrical metal substrates. No catalyst is required and the CNS surface coverage is uniform over the cylindrical metal substrate. The CNS growth was characterized on several metallic substrates including tantalum, niobium, palladium, and nickel wires. Using fast-scan cyclic voltammetry (FSCV), bare metal wires could not detect 1 μM dopamine while carbon nanospike coated wires could. The highest sensitivity and optimized S/N ratio was recorded from carbon nanospike-tantalum (CNS-Ta) microwires grown for 7.5 minutes, which had a LOD of 8 ± 2 nM for dopamine with FSCV. CNS-Ta microelectrodes were more reversible and had a smaller ΔE(p) for dopamine than carbon-fiber microelectrodes, suggesting faster electron transfer kinetics. The kinetics of dopamine redox were adsorption controlled at CNS-Ta microelectrodes and repeated electrochemical measurements displayed stability for up to ten hours in vitro and over a ten day period as well. The oxidation potential was significantly different for ascorbic acid and uric acid compared to dopamine. Growing carbon nanospikes on metal wires is a promising method to produce uniformly-coated, carbon nanostructured cylindrical microelectrodes for sensitive dopamine detection.

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Year:  2015        PMID: 26389138      PMCID: PMC4618699          DOI: 10.1039/c5an01467k

Source DB:  PubMed          Journal:  Analyst        ISSN: 0003-2654            Impact factor:   4.616


  28 in total

1.  Overoxidation of carbon-fiber microelectrodes enhances dopamine adsorption and increases sensitivity.

Authors:  Michael L A V Heien; Paul E M Phillips; Garret D Stuber; Andrew T Seipel; R Mark Wightman
Journal:  Analyst       Date:  2003-11-11       Impact factor: 4.616

2.  Contiguous petal-like carbon nanosheet outgrowths from graphite fibers by plasma CVD.

Authors:  Thiruvelu Bhuvana; Anurag Kumar; Aditya Sood; Roger H Gerzeski; Jianjun Hu; Venkata Srinu Bhadram; Chandrabhas Narayana; Timothy S Fisher
Journal:  ACS Appl Mater Interfaces       Date:  2010-03       Impact factor: 9.229

Review 3.  New electrodes for old: from carbon nanotubes to edge plane pyrolytic graphite.

Authors:  Craig E Banks; Richard G Compton
Journal:  Analyst       Date:  2006-01       Impact factor: 4.616

4.  Rapid, sensitive detection of neurotransmitters at microelectrodes modified with self-assembled SWCNT forests.

Authors:  Ning Xiao; B Jill Venton
Journal:  Anal Chem       Date:  2012-08-24       Impact factor: 6.986

5.  Functional groups modulate the sensitivity and electron transfer kinetics of neurochemicals at carbon nanotube modified microelectrodes.

Authors:  Christopher B Jacobs; Trisha L Vickrey; B Jill Venton
Journal:  Analyst       Date:  2011-03-04       Impact factor: 4.616

6.  Carbon nanofiber electrode array for electrochemical detection of dopamine using fast scan cyclic voltammetry.

Authors:  Jessica E Koehne; Michael Marsh; Adwoa Boakye; Brandon Douglas; In Yong Kim; Su-Youne Chang; Dong-Pyo Jang; Kevin E Bennet; Christopher Kimble; Russell Andrews; M Meyyappan; Kendall H Lee
Journal:  Analyst       Date:  2011-03-08       Impact factor: 4.616

7.  Conical tungsten tips as substrates for the preparation of ultramicroelectrodes.

Authors:  Andre Hermans; R Mark Wightman
Journal:  Langmuir       Date:  2006-12-05       Impact factor: 3.882

8.  Simultaneous monitoring of dopamine concentration at spatially different brain locations in vivo.

Authors:  Matthew K Zachek; Pavel Takmakov; Jinwoo Park; R Mark Wightman; Gregory S McCarty
Journal:  Biosens Bioelectron       Date:  2009-10-15       Impact factor: 10.618

9.  Vertically aligned carbon nanofiber as nano-neuron interface for monitoring neural function.

Authors:  Zhe Yu; Timothy E McKnight; M Nance Ericson; Anatoli V Melechko; Michael L Simpson; Barclay Morrison
Journal:  Nanomedicine       Date:  2012-03-07       Impact factor: 5.307

10.  Polyethylenimine carbon nanotube fiber electrodes for enhanced detection of neurotransmitters.

Authors:  Alexander G Zestos; Christopher B Jacobs; Elefterios Trikantzopoulos; Ashley E Ross; B Jill Venton
Journal:  Anal Chem       Date:  2014-08-21       Impact factor: 6.986

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  19 in total

Review 1.  Recent advances in fast-scan cyclic voltammetry.

Authors:  Pumidech Puthongkham; B Jill Venton
Journal:  Analyst       Date:  2020-02-17       Impact factor: 4.616

2.  Communication-Carbon Nanotube Fiber Microelectrodes for High Temporal Measurements of Dopamine.

Authors:  Alexander G Zestos; B Jill Venton
Journal:  J Electrochem Soc       Date:  2018-07-25       Impact factor: 4.316

3.  Evaluation of carbon nanotube fiber microelectrodes for neurotransmitter detection: Correlation of electrochemical performance and surface properties.

Authors:  Cheng Yang; Elefterios Trikantzopoulos; Christopher B Jacobs; B Jill Venton
Journal:  Anal Chim Acta       Date:  2017-01-31       Impact factor: 6.558

4.  Cavity Carbon-Nanopipette Electrodes for Dopamine Detection.

Authors:  Cheng Yang; Keke Hu; Dengchao Wang; Yasmine Zubi; Scott T Lee; Pumidech Puthongkham; Michael V Mirkin; B Jill Venton
Journal:  Anal Chem       Date:  2019-03-12       Impact factor: 6.986

5.  Optimization of graphene oxide-modified carbon-fiber microelectrode for dopamine detection.

Authors:  Yuanyu Chang; B Jill Venton
Journal:  Anal Methods       Date:  2020-05-18       Impact factor: 2.896

6.  Polymer-Modified Carbon Fiber Microelectrodes for Neurochemical Detection of Dopamine and Metabolites.

Authors:  P M Wonnenberg; A G Zestos
Journal:  ECS Trans       Date:  2020-05

7.  Carbon nanospikes have better electrochemical properties than carbon nanotubes due to greater surface roughness and defect sites.

Authors:  Qun Cao; Dale K Hensley; Nickolay V Lavrik; B Jill Venton
Journal:  Carbon N Y       Date:  2019-08-26       Impact factor: 9.594

8.  Nanodiamond Coating Improves the Sensitivity and Antifouling Properties of Carbon Fiber Microelectrodes.

Authors:  Pumidech Puthongkham; B Jill Venton
Journal:  ACS Sens       Date:  2019-08-21       Impact factor: 7.711

9.  Influence of Geometry on Thin Layer and Diffusion Processes at Carbon Electrodes.

Authors:  Qun Cao; Zijun Shao; Dale K Hensley; Nickolay V Lavrik; B Jill Venton
Journal:  Langmuir       Date:  2021-02-16       Impact factor: 3.882

10.  Multiplexing neurochemical detection with carbon fiber multielectrode arrays using fast-scan cyclic voltammetry.

Authors:  Harmain Rafi; Alexander G Zestos
Journal:  Anal Bioanal Chem       Date:  2021-07-14       Impact factor: 4.142

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