hplc pump alltech model 426 (Alltech Inc)
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Hplc Pump Alltech Model 426, supplied by Alltech Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/hplc+pump+alltech+model+426/hplc+pump+alltech+426/pmc10071486-85-6-5
Average 90 stars, based on 1 article reviews
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1) Product Images from "Low-level determination of six arsenic species in urine by High Performance Liquid Chromatography-Inductively Coupled Plasma-Mass Spectrometry (HPLC-ICP-MS)"
Article Title: Low-level determination of six arsenic species in urine by High Performance Liquid Chromatography-Inductively Coupled Plasma-Mass Spectrometry (HPLC-ICP-MS)
Journal: Analytical methods : advancing methods and applications
doi: 10.1039/c0ay00601g
Figure Legend Snippet: Final HPLC and ICP-MS operating conditions
Techniques Used: Injection, Clinical Proteomics, Extraction
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Article Title: Circuit modification in electrical field flow fractionation systems generating higher resolution separation of nanoparticles. Article Snippet: Compared to other sub-techniques of field flow fractionation (FFF), cyclical electrical field flow fractionation (CyElFFF) is a relatively new method with many opportunities remaining for improvement.. One of the most important limitations of this method is the separation of particles smaller than 100 nm.. For such small particles, the diffusion rate becomes very high, resulting in severe reductions in the CyElFFF separation efficiency. Article Title: Separation of Magnetic Nanoparticles by Cyclical Electrical Field Flow Fractionation Article Snippet: In this study, the potential of Cyclical Electrical Field Flow Fractionation (CyEFFF) for the separation of magnetic nanoparticles is investigated.. 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Clinical Proteomics:Article Title: Particle Based Modeling of Electrical Field Flow Fractionation Systems Article Snippet: To generate the flow of the carrier liquid (de-ionized water, 18.2 MΩ/cm), an Article Title: Low-level determination of six arsenic species in urine by High Performance Liquid Chromatography-Inductively Coupled Plasma-Mass Spectrometry (HPLC-ICP-MS) Article Snippet: The HPLC system included an Article Title: Selective hydrogenation over Pd nanoparticles supported on a pore-flow-through silica monolith microreactor with hierarchical porosity. Article Snippet: Well-dispersed Pd nanoparticles have been synthesized inside the mesoporosity of a silica monolith featuring hierarchical porosity of homogeneous interconnected macropores (4 microns) and mesopores (11 nm).. These monoliths have been implemented as microreactors for selective hydrogenation reactions.. Conversion and selectivity can be tuned by adjusting the flow rates of hydrogen and substrates. Article Title: Degradation of antibiotics by modified vacuum-UV based processes: Mechanistic consequences of H 2 O 2 and K 2 S 2 O 8 in the presence of halide ions. Article Snippet: • There was greater degradation of CEX, NOF, and OFX by K2S2O8 than H2O2.. • The effectiveness of chemical agents was promoted by VUV irradiation.. • Co-existence of Cl and Br synergistically enhanced the antibiotics degrada- Article Title: Biased cyclical electrical field flow fractionation for separation of sub 50 nm particles. Article Snippet: Cyclical electrical field flow fractionation (CyElFFF) is a technique for characterizing and separating nanoparticles based on their size and charge using cyclical electric fields.. The high diffusion rate of nanoparticles has prevented CyElFFF from being applicable to particles smaller than 100 nm.. In this work, the diffusion challenges associated with nanoparticles was resolved using biased cyclical electric fields. Article Title: Circuit modification in electrical field flow fractionation systems generating higher resolution separation of nanoparticles. Article Snippet: Compared to other sub-techniques of field flow fractionation (FFF), cyclical electrical field flow fractionation (CyElFFF) is a relatively new method with many opportunities remaining for improvement.. One of the most important limitations of this method is the separation of particles smaller than 100 nm.. For such small particles, the diffusion rate becomes very high, resulting in severe reductions in the CyElFFF separation efficiency. Article Title: Separation of Magnetic Nanoparticles by Cyclical Electrical Field Flow Fractionation Article Snippet: In this study, the potential of Cyclical Electrical Field Flow Fractionation (CyEFFF) for the separation of magnetic nanoparticles is investigated.. 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Article Title: Degradation of antibiotics by modified vacuum-UV based processes: Mechanistic consequences of H 2 O 2 and K 2 S 2 O 8 in the presence of halide ions. Article Snippet: • There was greater degradation of CEX, NOF, and OFX by K2S2O8 than H2O2.. • The effectiveness of chemical agents was promoted by VUV irradiation.. • Co-existence of Cl and Br synergistically enhanced the antibiotics degrada- Article Title: Biased cyclical electrical field flow fractionation for separation of sub 50 nm particles. Article Snippet: Cyclical electrical field flow fractionation (CyElFFF) is a technique for characterizing and separating nanoparticles based on their size and charge using cyclical electric fields.. The high diffusion rate of nanoparticles has prevented CyElFFF from being applicable to particles smaller than 100 nm.. In this work, the diffusion challenges associated with nanoparticles was resolved using biased cyclical electric fields. Article Title: Circuit modification in electrical field flow fractionation systems generating higher resolution separation of nanoparticles. Article Snippet: Compared to other sub-techniques of field flow fractionation (FFF), cyclical electrical field flow fractionation (CyElFFF) is a relatively new method with many opportunities remaining for improvement.. One of the most important limitations of this method is the separation of particles smaller than 100 nm.. For such small particles, the diffusion rate becomes very high, resulting in severe reductions in the CyElFFF separation efficiency. Article Title: Separation of Magnetic Nanoparticles by Cyclical Electrical Field Flow Fractionation Article Snippet: In this study, the potential of Cyclical Electrical Field Flow Fractionation (CyEFFF) for the separation of magnetic nanoparticles is investigated.. We demonstrated for the first time that by the application of appropriate voltage waveforms, one can separate gold nanoparticles with sizes less than 50 nm.. By using suitable voltage waveforms, the detrimental effect of the particle diffusion is suppressed and particles in the range of 10 nms can be fractionated. Article Title: Electrical field-flow fractionation for metal nanoparticle characterization. Article Snippet: The potential of electrical field-flow fractionation (ElFFF) for characterization of metal nanoparticles was investigated in this study.. Parameters affecting separation and retention such as applied DC voltage and flow rate were examined.. Nanoparticles with different types of stabilizers, including citrate and tannic acid, were investigated. |