Tungsten disulfide (WS2) nanosheet-based photoelectrochemical aptasensing of chloramphenicol
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Yunlei Zhou | Huanshun Yin | Yunlei Zhou | S. Ai | Huanshun Yin | Yue Wang | Shiyun Ai | Minghui Wang | Yue Wang | Chengji Sui | Minghui Wang | Chengji Sui
[1] Yunlei Zhou,et al. Photoelectrochemical biosensor for microRNA detection based on multiple amplification strategies , 2018, Microchimica Acta.
[2] Wei Cheng,et al. A simple and sensitive electrochemical aptasensor for determination of Chloramphenicol in honey based on target-induced strand release , 2012 .
[3] Ning Gan,et al. A novel "dual-potential" electrochemiluminescence aptasensor array using CdS quantum dots and luminol-gold nanoparticles as labels for simultaneous detection of malachite green and chloramphenicol. , 2015, Biosensors & bioelectronics.
[4] Hua Zhang,et al. Two-dimensional transition metal dichalcogenide nanosheet-based composites. , 2015, Chemical Society reviews.
[5] N A Karaseva,et al. A piezoelectric immunosensor for chloramphenicol detection in food. , 2012, Talanta.
[6] X. Bai,et al. Voltammetric determination of chloramphenicol using a carbon fiber microelectrode modified with Fe3O4 nanoparticles , 2016, Microchimica Acta.
[7] A. Tuantranont,et al. A screen-printed carbon electrode modified with gold nanoparticles, poly(3,4-ethylenedioxythiophene), poly(styrene sulfonate) and a molecular imprint for voltammetric determination of nitrofurantoin , 2018, Microchimica Acta.
[8] He-lin Niu,et al. Photoelectrochemical immunoassay for human interleukin 6 based on the use of perovskite-type LaFeO3 nanoparticles on fluorine-doped tin oxide glass , 2017, Microchimica Acta.
[9] Chunya Li,et al. Ionic liquid auxiliary exfoliation of WS2 nanosheets and the enhanced effect of hollow gold nanospheres on their photoelectrochemical sensing towards human epididymis protein 4 , 2018, Sensors and Actuators B: Chemical.
[10] Panpan Wang,et al. A cathodic “signal-on” photoelectrochemical sensor for Hg2+ detection based on ion-exchange with ZnS quantum dots , 2018 .
[11] Martin M. F. Choi,et al. Fluorescence quenching for chloramphenicol detection in milk based on protein-stabilized Au nanoclusters. , 2015, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[12] Yan Zhang,et al. Determination of chloramphenicol residues in milk by enzyme-linked immunosorbent assay: improvement by biotin-streptavidin-amplified system. , 2010, Journal of agricultural and food chemistry.
[13] D. Tang,et al. Reduced graphene oxide-functionalized FeOOH for signal-on photoelectrochemical sensing of prostate-specific antigen with bioresponsive controlled release system. , 2017, Biosensors & bioelectronics.
[14] Xiliang Luo,et al. A photoelectrochemical sensor for ultrasensitive dopamine detection based on single-layer NanoMoS2 modified gold electrode , 2017 .
[15] Ning Gan,et al. Fluorescent aptasensor for chloramphenicol detection using DIL-encapsulated liposome as nanotracer. , 2016, Biosensors & bioelectronics.
[16] Ru-Qin Yu,et al. Highly sensitive and selective strategy for microRNA detection based on WS2 nanosheet mediated fluorescence quenching and duplex-specific nuclease signal amplification. , 2014, Analytical chemistry.
[17] Martin Pumera,et al. Cytotoxicity of exfoliated transition-metal dichalcogenides (MoS2 , WS2 , and WSe2 ) is lower than that of graphene and its analogues. , 2014, Chemistry.
[18] A. Yu,et al. Amperometric aptasensing of chloramphenicol at a glassy carbon electrode modified with a nanocomposite consisting of graphene and silver nanoparticles , 2017, Microchimica Acta.
[19] Freddy Dardenne,et al. Aptasensing of chloramphenicol in the presence of its analogues: reaching the maximum residue limit. , 2012, Analytical chemistry.
[20] Qian Zhu,et al. A dual-color fluorescent biosensing platform based on WS2 nanosheet for detection of Hg(2+) and Ag(.). , 2016, Biosensors & bioelectronics.
[21] Huizhong Wang,et al. Determination of chloramphenicol in aquatic products by graphene-based SPE coupled with HPLC-MS/MS. , 2012, Journal of separation science.
[22] C. Mattevi,et al. MoS2/WS2 Heterojunction for Photoelectrochemical Water Oxidation , 2017 .
[23] Yanbao Yu,et al. Photoelectrochemical determination of Hg(II) via dual signal amplification involving SPR enhancement and a folding-based DNA probe , 2017, Microchimica Acta.
[24] Chunhai Fan,et al. Single-layer MoS2-based nanoprobes for homogeneous detection of biomolecules. , 2013, Journal of the American Chemical Society.
[25] Fushen Lu,et al. A photoelectrochemical aptasensor for thrombin based on the use of carbon quantum dot-sensitized TiO2 and visible-light photoelectrochemical activity , 2018, Microchimica Acta.
[26] Bing Zhang,et al. Photoresponsive colorimetric immunoassay based on chitosan modified AgI/TiO2 heterojunction for highly sensitive chloramphenicol detection. , 2017, Biosensors & bioelectronics.
[27] Wei-Wei Zhao,et al. Photoelectrochemical bioanalysis: the state of the art. , 2015, Chemical Society reviews.
[28] Yanhua Shi,et al. A novel signal-on photoelectrochemical biosensor for detection of 5-hydroxymethylcytosine based on in situ electron donor producing strategy and all wavelengths of light irradiation , 2016 .
[29] X. Bai,et al. Photoelectrochemical CdSe/TiO2 nanotube array microsensor for high-resolution in-situ detection of dopamine , 2018, Microchimica Acta.
[30] Yan Wang,et al. Visible light photoelectrochemical aptasensor for chloramphenicol by using a TiO2 nanorod array sensitized with Eu(III)-doped CdS quantum dots , 2018, Microchimica Acta.
[31] Y. Liu,et al. A label-free photoelectrochemical aptasensor based on nitrogen-doped graphene quantum dots for chloramphenicol determination. , 2015, Biosensors & bioelectronics.
[32] Yuzhi Fang,et al. Determination and separation of chloramphenicol and its hydrolysate in eye-drops by capillary zone electrophoresis with amperometric detection , 1999 .
[33] Xiaoru Zhang,et al. Low-toxic Ag2S quantum dots for photoelectrochemical detection glucose and cancer cells. , 2014, Biosensors & bioelectronics.
[34] H. Luo,et al. Post-chemiluminescence determination of chloramphenicol based on luminol-potassium periodate system. , 2012, Luminescence : the journal of biological and chemical luminescence.
[35] Q. Yuan,et al. Highly sensitive electrochemical sensor for chloramphenicol based on MOF derived exfoliated porous carbon. , 2017, Talanta.