Carbon nanotube-modified monolithic polymethacrylate pipette tips for (micro)solid-phase extraction of antidepressants from urine samples. Fresco-Cala, B., Mompó-Roselló, Ó., Simó-Alfonso, E., Cárdenas, S., & Herrero-Martínez, J. Microchimica Acta, Springer-Verlag Wien, 2018. cited By 48
Carbon nanotube-modified monolithic polymethacrylate pipette tips for (micro)solid-phase extraction of antidepressants from urine samples [link]Paper  doi  abstract   bibtex   
This work evaluates the potential of methacrylate monoliths with multi-walled carbon nanotubes incorporated into the polymeric network for the extraction of antidepressants from human urine. The method is based on a micropipette solid-phase extraction tip containing a hybrid monolithic material covalently attached to the polypropylene housing. A polymer layer made from poly(ethylene dimethacrylate) was bound to the inner surface of a polypropylene tip via UV grafting. The preparation of the monolith and the microextraction steps were optimized in terms of adsorption capacity. Limits of detection ranged from 9 to 15 μg·L−1. The average precision of the method varied between 3 and 5% (intra-tips), and from 4 to 14% (inter-tips). The accuracy of the method was evaluated through a recovery study by using spiked samples. [Figure not available: see fulltext.]. © 2018, Springer-Verlag GmbH Austria, part of Springer Nature.
@ARTICLE{Fresco-Cala2018,
author={Fresco-Cala, B. and Mompó-Roselló, Ó. and Simó-Alfonso, E.F. and Cárdenas, S. and Herrero-Martínez, J.M.},
title={Carbon nanotube-modified monolithic polymethacrylate pipette tips for (micro)solid-phase extraction of antidepressants from urine samples},
journal={Microchimica Acta},
year={2018},
volume={185},
number={2},
doi={10.1007/s00604-017-2659-4},
art_number={127},
note={cited By 48},
url={https://www.scopus.com/inward/record.uri?eid=2-s2.0-85040985542&doi=10.1007%2fs00604-017-2659-4&partnerID=40&md5=d3f06ff857e4e4593cea694215f8fbb2},
affiliation={Departamento de Química Analítica, Instituto Universitario de Investigación en Química Fina y Nanoquímica IUNAN, Universidad de Córdoba, Campus de Rabanales, Edificio Marie Curie, Córdoba, E-14071, Spain; Department of Analytical Chemistry, University of Valencia, Dr. Moliner 50, Burjassot, Valencia  46100, Spain},
abstract={This work evaluates the potential of methacrylate monoliths with multi-walled carbon nanotubes incorporated into the polymeric network for the extraction of antidepressants from human urine. The method is based on a micropipette solid-phase extraction tip containing a hybrid monolithic material covalently attached to the polypropylene housing. A polymer layer made from poly(ethylene dimethacrylate) was bound to the inner surface of a polypropylene tip via UV grafting. The preparation of the monolith and the microextraction steps were optimized in terms of adsorption capacity. Limits of detection ranged from 9 to 15 μg·L−1. The average precision of the method varied between 3 and 5% (intra-tips), and from 4 to 14% (inter-tips). The accuracy of the method was evaluated through a recovery study by using spiked samples. [Figure not available: see fulltext.]. © 2018, Springer-Verlag GmbH Austria, part of Springer Nature.},
author_keywords={Biological samples;  Carbon nanoparticles;  Drugs;  Hybrid monolith;  Liquid chromatography;  Microextraction;  Photografting process;  Porous polymer;  UV attachment},
keywords={antidepressant agent;  carbon nanotube;  polymethacrylic acid;  polymethacrylic acid derivative, adsorption;  chemistry;  equipment design;  human;  isolation and purification;  limit of detection;  procedures;  solid phase microextraction;  urine, Adsorption;  Antidepressive Agents;  Equipment Design;  Humans;  Limit of Detection;  Nanotubes, Carbon;  Polymethacrylic Acids;  Solid Phase Microextraction},
chemicals_cas={polymethacrylic acid, 25087-26-7; Antidepressive Agents; Nanotubes, Carbon; polymethacrylic acid; Polymethacrylic Acids},
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correspondence_address1={Cárdenas, S.; Departamento de Química Analítica, Campus de Rabanales, Edificio Marie Curie, Spain; email: scardenas@uco.es},
publisher={Springer-Verlag Wien},
issn={00263672},
coden={MIACA},
pubmed_id={29594510},
language={English},
abbrev_source_title={Microchim. Acta},
document_type={Article},
source={Scopus},
}

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