chitosan has been researched along with pheophytin a in 9 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 0 (0.00) | 29.6817 |
2010's | 5 (55.56) | 24.3611 |
2020's | 4 (44.44) | 2.80 |
Authors | Studies |
---|---|
Lei, M; Li, R; Liu, H; Liu, Y; Peng, L; Shao, J; Wang, Z; Wei, X | 1 |
Das, D; Mandal, P; Manna, JS; Mitra, MK | 1 |
Cosma, P; Fini, P; Rizzi, V; Semeraro, P | 1 |
Cai, J; Lin, Q; Lin, W; Wang, X; Wu, F; Ye, W; Zhang, Q | 1 |
de Magalhães, L; Huszar, VLM; Lima, ERA; Lürling, M; Marinho, MM; Miranda, M; Mucci, M; Noyma, NP; van Oosterhout, F | 1 |
Chen, J; Chen, M; Huang, M; Li, X; Liu, T; Wang, L; Xie, X; Yan, Y | 1 |
Faassen, EJ; Guedes, IA; Lürling, M; Mucci, M | 1 |
Balusamy, SR; Mijakovic, I; Perumalsamy, H; Rahimi, S; Shanmugam, R; Sukweenadhi, J; Sunderraj, S; Thangavelu, L | 1 |
Abdelrahman, M; Amini, M; Gholami, R; Hosseini, MS; Karimi, M; Tran, LP; Zahedi, SM | 1 |
1 review(s) available for chitosan and pheophytin a
Article | Year |
---|---|
Chitosan, chitosan nanoparticles and modified chitosan biomaterials, a potential tool to combat salinity stress in plants.
Topics: Anthocyanins; Antioxidants; Biocompatible Materials; Chitosan; Chlorophyll A; Nanoparticles; Salinity; Salt Stress; Stress, Physiological | 2022 |
8 other study(ies) available for chitosan and pheophytin a
Article | Year |
---|---|
Physiological responses of Microcystis aeruginosa NIES-843 (cyanobacterium) under the stress of chitosan modified kaolinite (CMK) loading.
Topics: Carotenoids; Chelating Agents; Chitosan; Chlorophyll; Chlorophyll A; Enzymes; Eutrophication; Kaolin; Microbial Viability; Microcystis; Phycocyanin; Water Pollution, Chemical; Water Purification | 2012 |
Excitonic dynamics of Chlorophyll-a molecules in chitosan hydrogel scaffold.
Topics: Anisotropy; Chitosan; Chlorophyll; Chlorophyll A; Ethanol; Fluorescence; Hydrogels; Infrared Rays; Photochemical Processes; Plant Leaves; Solvents; Spectrum Analysis; Spinacia oleracea; Time Factors; Water | 2015 |
Detailed investigation of ROS arisen from chlorophyll a/Chitosan based-biofilm.
Topics: Anthracenes; beta-Cyclodextrins; Chitosan; Chlorophyll; Chlorophyll A; Cytochromes c; Fluoresceins; Hydrogen Peroxide; Light; Membranes, Artificial; Photosensitizing Agents; Singlet Oxygen; Solutions; Superoxides; Uric Acid; Water | 2016 |
Preparation of copper-chelate quaternized carboxymethyl chitosan/organic rectorite nanocomposites for algae inhibition.
Topics: Aluminum Silicates; Chitosan; Chlorophyll; Chlorophyll A; Copper; Diatoms; Disinfectants; Minerals; Nanocomposites | 2016 |
Coagulant plus ballast technique provides a rapid mitigation of cyanobacterial nuisance.
Topics: Aluminum Compounds; Bacterial Toxins; Biomass; Brazil; Chitosan; Chlorophyll; Chlorophyll A; Coagulants; Cyanobacteria; Cyanobacteria Toxins; Marine Toxins; Microcystins; Soil | 2017 |
Data-independent acquisition proteomic analysis of biochemical factors in rice seedlings following treatment with chitosan oligosaccharides.
Topics: Chitosan; Chlorophyll A; Gene Expression Regulation, Plant; Oligosaccharides; Oryza; Plant Proteins; Proteomics; Seedlings | 2020 |
Chitosan as a Coagulant to Remove Cyanobacteria Can Cause Microcystin Release.
Topics: Cell Membrane Permeability; Chitosan; Chlorophyll A; Flocculation; Microcystins; Microcystis; Photosystem II Protein Complex | 2020 |
Chitosan-based Schiff base-metal (Fe, Cu, and Zn) complexes mitigate the negative consequences of drought stress on pomegranate fruits.
Topics: Anthocyanins; Chitosan; Chlorophyll A; Coordination Complexes; Droughts; Fruit; Metals; Pomegranate; Schiff Bases; Zinc | 2023 |