NaYF4:Yb3+/Er3+nanoparticle-based upconversion luminescence resonance energy transfer sensor for mercury(ii) quantification
Literature Information
Hui Li, Leyu Wang
Upconversion luminescence is an anti-Stokes' emission process by converting long wavelength near-infrared (NIR, 980 nm) irradiation into shorter wavelength visible light emission, which demonstrates many advantages including no autofluorescence, low damage to samples, no photobleaching, and high sensitivity. Based on the Rhodamine B thiolactone (RBT) functionalized NaYF4:15%Yb3+,5%Er3+ (UCNPs@RBT) nanocomposites, an ultrasensitive, selective, and rapid upconversion luminescence resonance energy transfer (UC-LRET) sensor has been developed for the detection of mercury ions (Hg2+) in water. Upconverting luminescence resonance energy transfer from the UCNPs to the RBT derivates occurs after the addition of Hg2+ ions into the UCNPs@RBT colloidal solution. This UC-LRET recognition of Hg2+ can be finished within 1 min and other cations have no influence on the detection of mercury ions. This newly developed sensor demonstrates high selectivity toward the mercury ions and enables ultrasensitive and rapid detection of mercury ions in water in the range of 5 nM to 10 μM with a 3σ limit of detection of 3.7 nM. This sensor can be used for a naked-eye detection of Hg2+ ions via its green upconverting luminescence response under the infrared excitation (980 nm) with the merit of no autofluorescence interference and good photostability. In addition, by dipping the hydrogel of UCNPs@RBT nanocomposites onto the filter paper, a highly selective and convenient luminescent paper sensor for Hg2+ ions was also developed.
Related Literature
Co-solvent enhanced zinc oxysulfide buffer layers in Kesterite copper zinc tin selenide solar cells
K. Xerxes Steirer, Rebekah L. Garris, Jian V. Li, Michael J. Dzara, Paul F. Ndione, Kannan Ramanathan, Ingrid Repins, Glenn Teeter, Craig L. Perkins
DOI: 10.1039/C5CP01607J
Molecular diffusion and dc conductivity perfectly correlated with molecular rotational dynamics in a plastic crystalline electrolyte
M. Zachariah, M. Romanini, P. Tripathi, J. Ll. Tamarit, R. Macovez
DOI: 10.1039/C5CP02345A
NO reduction by CO over CuO supported on CeO2-doped TiO2: the effect of the amount of a few CeO2
Changshun Deng, Bin Li, Lihui Dong, Feiyue Zhang, Minguang Fan, Guangzhou Jin, Junbin Gao, Liwen Gao, Fei Zhang, Xinpeng Zhou
DOI: 10.1039/C5CP00745C
Gated electron transfer reactions of truncated hemoglobin from Bacillus subtilis differently orientated on SAM-modified electrodes
Deby Fapyane, Andrey Kartashov, Claes von Wachenfeldt, Elena E. Ferapontova
DOI: 10.1039/C5CP00960J
Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex
Leon Freitag, Stefan Knecht, Sebastian F. Keller, Mickaël G. Delcey, Thomas Bondo Pedersen, Roland Lindh, Markus Reiher, Leticia González
DOI: 10.1039/C4CP05278A
Identification of intrinsic catalytic activity for electrochemical reduction of water molecules to generate hydrogen
Tatsuya Shinagawa, Kazuhiro Takanabe
DOI: 10.1039/C5CP02330K
Unraveling the effect of polymer dots doping in inverted low bandgap organic solar cells
Xinyuan Zhang, Chunyu Liu, Jinfeng Li, Yeyuan He, Zhiqi Li, Hao Li, Liang Shen, Wenbin Guo, Shengping Ruan
DOI: 10.1039/C5CP01722J
Electric field control of proton-transfer molecular switching: molecular dynamics study on salicylidene aniline
Joanna Sadlej, Andrzej L. Sobolewski
DOI: 10.1039/C5CP00686D
Colloidal properties and behaviors of 3 nm primary particles of detonation nanodiamonds in aqueous media
N. O. Mchedlov-Petrossyan, N. N. Kamneva, A. I. Marynin, A. P. Kryshtal, E. Ōsawa
DOI: 10.1039/C5CP01405K
Two-dimensional graphene-like C2N: an experimentally available porous membrane for hydrogen purification
B. Xu, H. Xiang, Q. Wei, J. Q. Liu, Y. D. Xia
DOI: 10.1039/C5CP01789K
You might also like
What are the main uses of (5-Sulfamoyl-3-pyridinyl)boronic acid (CAS: 951233-61-7)?
(5-Sulfamoyl-3-pyridinyl)boronic acid is primarily used in chemical synthesis, p...
How is Benzyl 2-methyl-2-(methylsulfonyl)-4-pentenoate (CAS: 1942858-50-5) typically synthesized?
Benzyl 2-methyl-2-(methylsulfonyl)-4-pentenoate is typically synthesized via est...
What precautions should be taken when handling 8-Fluoroquinolin-6-ol (CAS: 209353-22-0)?
When handling 8-Fluoroquinolin-6-ol (CAS: 209353-22-0), it is important to use p...
What are the physical and chemical properties of 1,3-Dibromo-5-(2-methyl-2-propanyl)benzene (CAS: 129316-09-2)?
1,3-Dibromo-5-(2-methyl-2-propanyl)benzene (CAS: 129316-09-2) is a crystalline c...
What industries use Ethyl 7-chloro-4-oxo-1-(1,3-thiazol-2-yl)-1,4-dihydro-1,8-naphthyridine-3-carboxylate (CAS: 174726-87-5)?
Ethyl 7-chloro-4-oxo-1-(1,3-thiazol-2-yl)-1,4-dihydro-1,8-naphthyridine-3-carbox...
What precautions should be taken when handling Delta-7-Avenasterol (CAS: 23290-26-8)?
When handling Delta-7-Avenasterol (CAS: 23290-26-8), it is important to wear app...
What precautions should be taken when handling N-({(5R)-3-[3-Fluoro-4-(4-morpholinyl)phenyl]-2-oxo-1,3-oxazolidin-5-yl}methyl)acetamide (CAS: 872992-20-6)?
Proper handling involves the use of personal protective equipment such as gloves...
What precautions should be taken when handling 2-Methyl-2-proanyl 4-[(2-aminophenyl)amino]-1-piperidinecarboxylate (CAS: 79099-00-6)?
When handling 2-Methyl-2-proanyl 4-[(2-aminophenyl)amino]-1-piperidinecarboxylat...
What is N-Methyl-4-chlorobenzylamine hydrochloride (CAS: 65542-24-7)?
N-Methyl-4-chlorobenzylamine hydrochloride (CAS: 65542-24-7) is a organic compou...
Is [2-(Dodecyloxy)ethoxy]acetic acid (CAS: 27306-90-7) safe?
[2-(Dodecyloxy)ethoxy]acetic acid (CAS: 27306-90-7) is generally considered safe...
Source Journal
Analyst

Analyst publishes analytical and bioanalytical research that reports premier fundamental discoveries and inventions, and the applications of those discoveries, unconfined by traditional discipline barriers.














