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1.
Analyst ; 139(20): 5140-7, 2014 Oct 21.
Artigo em Inglês | MEDLINE | ID: mdl-25093213

RESUMO

Current sensor devices for the detection of methane or natural gas emission are either expensive and have high power requirements or fail to provide a rapid response. This report describes an electrochemical methane sensor utilizing a non-volatile and conductive pyrrolidinium-based ionic liquid (IL) electrolyte and an innovative internal standard method for methane and oxygen dual-gas detection with high sensitivity, selectivity, and stability. At a platinum electrode in bis(trifluoromethylsulfonyl)imide (NTf2)-based ILs, methane is electro-oxidized to produce CO2 and water when an oxygen reduction process is included. The in situ generated CO2 arising from methane oxidation was shown to provide an excellent internal standard for quantification of the electrochemical oxygen sensor signal. The simultaneous quantification of both methane and oxygen in real time strengthens the reliability of the measurements by cross-validation of two ambient gases occurring within a single sample matrix and allows for the elimination of several types of random and systematic errors in the detection. We have also validated this IL-based methane sensor employing both conventional solid macroelectrodes and flexible microfabricated electrodes using single- and double-potential step chronoamperometry.


Assuntos
Técnicas de Química Analítica/métodos , Técnicas Eletroquímicas , Líquidos Iônicos/química , Metano/análise , Oxigênio/análise , Dióxido de Carbono/química , Eletrodos , Eletrólitos/química , Gases/análise , Oxirredução , Água/química
2.
Biosens Bioelectron ; 23(5): 728-34, 2007 Dec 15.
Artigo em Inglês | MEDLINE | ID: mdl-17888647

RESUMO

An integrated array of micron-dimension capacitors, originally developed for biometric applications (fingerprint identification), was engineered for detection of biological agents such as proteins and bacteria. This device consists of an array of 93,184 (256 x 364) individual capacitor-based sensing elements located underneath a thin (0.8 microm) layer of glass. This glass layer can be functionalized with organosilane-based monolayers to provide groups amenable for the immobilization of bioreceptors such as antibodies, enzymes, peptides, aptamers, and nucleotides. Upon functionalization with antibodies and in conjunction with signal amplification schemes that result in perturbation of the dielectric constant around the captured antigens, this system can be used as a detector of biological agents. Two signal amplification schemes were tested in this work: one consisted of 4 microm diameter latex immunobeads and a second one was based on colloidal gold catalyzed reduction of silver. These signal amplification approaches were demonstrated and show that this system is capable of specific detection of bacteria (Escherichia coli) and proteins (ovalbumin). The present work shows proof-of-principle demonstration that a simple fingerprint detector based on feedback capacitance measurements can be implemented as a biosensor. The approach presented could be easily expanded to simultaneously test for a large number of analytes and multiple samples given that this device has a large number of detectors. The device and required instrumentation is highly portable and does not require expensive and bulky instrumentation because it relies purely on electronic detection.


Assuntos
Bactérias/isolamento & purificação , Técnicas Biossensoriais , Capacitância Elétrica , Procedimentos Analíticos em Microchip , Proteínas/análise , Condutividade Elétrica , Microesferas , Soluções
3.
Chem Rev ; 109(3): 1402-33, 2009 Mar 11.
Artigo em Inglês | MEDLINE | ID: mdl-19222198
4.
Chem Rev ; 108(2): 352-66, 2008 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-18201108
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