Literature DB >> 30997559

A review on nanomaterial-based electrochemical, optical, photoacoustic and magnetoelastic methods for determination of uranyl cation.

Leila Farzin1, Mojtaba Shamsipur2, Shahab Sheibani3, Leila Samandari4, Zahra Hatami4.   

Abstract

This review (with 177 refs) gives an overview on nanomaterial-based methods for the determination of uranyl ion (UO22+) by different types of transducers. Following an introduction into the field, a first large section covers the fundamentals of selective recognition of uranyl ion by receptors such as antibodies, aptamers, DNAzymes, peptides, microorganisms, organic ionophores (such as salophens, catechols, phenanthrolines, annulenes, benzo-substituted macrocyclic diamides, organophosphorus receptors, calixarenes, crown ethers, cryptands and β-diketones), by ion imprinted polymers, and by functionalized nanomaterials. A second large section covers the various kinds of nanomaterials (NMs) used, specifically on NMs for electrochemical signal amplification, on NMs acting as signal tags or carriers for signal tags, on fluorescent NMs, on NMs for colorimetric assays, on light scattering NMs, on NMs for surface enhanced Raman scattering (SERS)-based assays and wireless magnetoelastic detection systems. We then discuss detection strategies, with subsections on electrochemical methods (including ion-selective and potentiometric systems, voltammetric systems and impedimetric systems). Further sections treat colorimetric, fluorometric, resonance light scattering-based, SERS-based and photoacoustic methods, and wireless magnetoelastic detection. The current state of the art is summarized, and current challenges are discussed at the end. Graphical abstract An overview is given on nanomaterial-based methods for the detection of uranyl ion by different types of transducers (such as electrochemical, optical, photoacoustic, magnetoelastic, etc) along with a critical discussion of their limitations, benefits and application to real samples.

Entities:  

Keywords:  Actinides; Bioreceptors; Functionalized nanomaterials; Ion imprinted polymers; Organic ionophores; Point-of-care detection

Year:  2019        PMID: 30997559     DOI: 10.1007/s00604-019-3426-5

Source DB:  PubMed          Journal:  Mikrochim Acta        ISSN: 0026-3672            Impact factor:   5.833


  88 in total

Review 1.  Engineering plasmonic metal colloids through composition and structural design.

Authors:  N E Motl; A F Smith; C J DeSantis; S E Skrabalak
Journal:  Chem Soc Rev       Date:  2013-12-19       Impact factor: 54.564

2.  Comparison of neutron activation analysis techniques for the determination of uranium concentrations in geological and environmental materials.

Authors:  S Landsberger; R Kapsimalis
Journal:  J Environ Radioact       Date:  2011-09-15       Impact factor: 2.674

3.  Trace analysis of uranyl ion (UO2(2+)) in aqueous solution by fluorescence turn-on detection via aggregation induced emission enhancement effect.

Authors:  Xiaotong Chen; Linfeng He; Yang Wang; Bing Liu; Yaping Tang
Journal:  Anal Chim Acta       Date:  2014-08-04       Impact factor: 6.558

4.  Binding properties of a monoclonal antibody directed toward lead-chelate complexes.

Authors:  M Khosraviani; R C Blake; A R Pavlov; S C Lorbach; H Yu; J B Delehanty; M W Brechbiel; D A Blake
Journal:  Bioconjug Chem       Date:  2000 Mar-Apr       Impact factor: 4.774

5.  Grafting of ion-imprinted polymers on the surface of silica gel particles through covalently surface-bound initiators: a selective sorbent for uranyl ion.

Authors:  Mojtaba Shamsipur; Javad Fasihi; Khadijeh Ashtari
Journal:  Anal Chem       Date:  2007-08-21       Impact factor: 6.986

6.  Synthesis of uranium-in-cryptand complexes.

Authors:  Daniel N Huh; Cory J Windorff; Joseph W Ziller; William J Evans
Journal:  Chem Commun (Camb)       Date:  2018-09-11       Impact factor: 6.222

7.  Highly Sensitive and Selective Photoelectrochemical Biosensor for Hg(2+) Detection Based on Dual Signal Amplification by Exciton Energy Transfer Coupled with Sensitization Effect.

Authors:  Ming Zhao; Gao-Chao Fan; Jing-Jia Chen; Jian-Jun Shi; Jun-Jie Zhu
Journal:  Anal Chem       Date:  2015-12-04       Impact factor: 6.986

8.  Applications of the static quenching of rhodamine B by carbon nanotubes.

Authors:  Ashraf Ahmad; Tetiana Kurkina; Klaus Kern; Kannan Balasubramanian
Journal:  Chemphyschem       Date:  2009-09-14       Impact factor: 3.102

9.  New nano-composite potentiometric sensor composed of graphene nanosheets/thionine/molecular wire for nanomolar detection of silver ion in various real samples.

Authors:  Abbas Afkhami; Ali Shirzadmehr; Tayyebeh Madrakian; Hasan Bagheri
Journal:  Talanta       Date:  2014-08-20       Impact factor: 6.057

10.  Fluorimetric method for the determination of uranium in natural waters.

Authors:  A Danielsson; B Rönnholm; L E Kjellström; F Ingman
Journal:  Talanta       Date:  1973-02       Impact factor: 6.057

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  3 in total

1.  A vertical flow microarray chip based on SERS nanotags for rapid and ultrasensitive quantification of α-fetoprotein and carcinoembryonic antigen.

Authors:  Di Zhang; Li Huang; Bing Liu; Qinyu Ge; Jian Dong; Xiangwei Zhao
Journal:  Mikrochim Acta       Date:  2019-10-15       Impact factor: 5.833

2.  Entropy-driven catalytic reaction-induced hairpin structure switching for fluorometric detection of uranyl ions.

Authors:  Wen Yun; Lin Chen; Zao Yi; Yong Yi; Yongjian Tang; Lizhu Yang
Journal:  Mikrochim Acta       Date:  2019-08-28       Impact factor: 5.833

Review 3.  Recent Advances on DNAzyme-Based Biosensors for Detection of Uranyl.

Authors:  Yunlong Bai; Lechang Xu; Huining Chai; Lei Zhou; Guoping Jiang; Guangyao Zhang
Journal:  Front Chem       Date:  2022-04-27       Impact factor: 5.545

  3 in total

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