silver has been researched along with ascorbate-2-phosphate in 8 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 1 (12.50) | 29.6817 |
2010's | 5 (62.50) | 24.3611 |
2020's | 2 (25.00) | 2.80 |
Authors | Studies |
---|---|
Chen, J; Jiang, J; Liang, Y; Luo, Y; Shen, G; Yu, R | 1 |
Feng, K; Jiang, J; Shen, G; Wu, ZS; Yu, R; Zhao, J | 1 |
Deng, K; Gao, Z; Miró, M; Tang, D; Wang, XD | 1 |
Guo, Y; Ju, H; Li, J; Wu, J | 1 |
Li, H; Li, R; Liu, M; Liu, X; Lu, Q; Yang, L; Yao, S; Zhang, S; Zhang, Y | 1 |
Chen, C; Jiang, Y; Lu, Y; Lu, Z; Ni, P; Zhang, G | 1 |
Chen, S; Guo, L; Wang, JH; Yu, YL; Zhang, YJ | 1 |
Ge, S; Huang, C; Liu, Y; Sun, Y; Wang, F; Yu, J | 1 |
8 other study(ies) available for silver and ascorbate-2-phosphate
Article | Year |
---|---|
Surface-enhanced Raman scattering for immunoassay based on the biocatalytic production of silver nanoparticles.
Topics: Alkaline Phosphatase; Ascorbic Acid; Biocatalysis; Enzymes, Immobilized; Humans; Immunoenzyme Techniques; Immunoglobulin G; Metal Nanoparticles; Polystyrenes; Reproducibility of Results; Sensitivity and Specificity; Silver; Spectrum Analysis, Raman; Surface Properties | 2009 |
High-sensitive electrochemical detection of point mutation based on polymerization-induced enzymatic amplification.
Topics: Alkaline Phosphatase; Ascorbic Acid; Biosensing Techniques; DNA; DNA Probes; Electrochemical Techniques; Electrodes; Magnesium; Oxidation-Reduction; Point Mutation; Polymerization; Sensitivity and Specificity; Silver; Streptavidin | 2011 |
High-resolution colorimetric assay for rapid visual readout of phosphatase activity based on gold/silver core/shell nanorod.
Topics: Alkaline Phosphatase; Ascorbic Acid; Colorimetry; Gold; Humans; Immunoassay; Nanotubes; Reference Standards; Silver; Spectrophotometry, Ultraviolet | 2014 |
A plasmonic colorimetric strategy for biosensing through enzyme guided growth of silver nanoparticles on gold nanostars.
Topics: Alkaline Phosphatase; Ascorbic Acid; Biosensing Techniques; Colorimetry; DNA; Gold; Limit of Detection; Metal Nanoparticles; Silver; Surface Plasmon Resonance | 2016 |
A novel multiple signal amplifying immunosensor based on the strategy of in situ-produced electroactive substance by ALP and carbon-based Ag-Au bimetallic as the catalyst and signal enhancer.
Topics: Alkaline Phosphatase; Animals; Ascorbic Acid; Biosensing Techniques; Carbon; Catalysis; Goats; Gold; Humans; Immunoconjugates; Immunoenzyme Techniques; Limit of Detection; Metal Nanoparticles; Nanotubes, Carbon; Oligopeptides; Silver | 2017 |
Fluorometric and colorimetric dual-readout alkaline phosphatase activity assay based on enzymatically induced formation of colored Au@Ag nanoparticles and an inner filter effect.
Topics: Adult; Alkaline Phosphatase; Ascorbic Acid; Colorimetry; Enzyme Assays; Gold; Graphite; Humans; Limit of Detection; Metal Nanoparticles; Oxidation-Reduction; Quantum Dots; Silver; Spectrometry, Fluorescence | 2019 |
A portable photoacoustic device for facile and sensitive detection of serum alkaline phosphatase activity.
Topics: Alkaline Phosphatase; Ascorbic Acid; Colorimetry; Humans; Light; Limit of Detection; Metal Nanoparticles; Photoacoustic Techniques; Reproducibility of Results; Silver; Silver Nitrate | 2020 |
Cathode-Anode Spatial Division Photoelectrochemical Platform Based on a One-Step DNA Walker for Monitoring of miRNA-21.
Topics: Alkaline Phosphatase; Ascorbic Acid; Biosensing Techniques; DNA; Electrochemical Techniques; Electrodes; Enzymes, Immobilized; Gold; Humans; Indium; Lead; Light; Limit of Detection; Metal Nanoparticles; MicroRNAs; Photochemical Processes; Quantum Dots; Reproducibility of Results; Silver; Sulfides | 2021 |