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Статті в журналах з теми "ChitosanNP"
KIM, KYUNG W., R. L. THOMAS, CHAN LEE, and HYUN J. PARK. "Antimicrobial Activity of Native Chitosan, Degraded Chitosan, and O-Carboxymethylated Chitosan." Journal of Food Protection 66, no. 8 (August 1, 2003): 1495–98. http://dx.doi.org/10.4315/0362-028x-66.8.1495.
Повний текст джерелаKhayrova, Adelya, Sergey Lopatin, Balzhima Shagdarova, Olga Sinitsyna, Arkady Sinitsyn, and Valery Varlamov. "Evaluation of Antibacterial and Antifungal Properties of Low Molecular Weight Chitosan Extracted from Hermetia illucens Relative to Crab Chitosan." Molecules 27, no. 2 (January 17, 2022): 577. http://dx.doi.org/10.3390/molecules27020577.
Повний текст джерелаMalm, Morgan, and Andrea M. Liceaga. "Physicochemical Properties of Chitosan from Two Commonly Reared Edible Cricket Species, and Its Application as a Hypolipidemic and Antimicrobial Agent." Polysaccharides 2, no. 2 (May 12, 2021): 339–53. http://dx.doi.org/10.3390/polysaccharides2020022.
Повний текст джерелаDerwich, Marcin, Lukasz Lassmann, Katarzyna Machut, Agata Zoltowska, and Elzbieta Pawlowska. "General Characteristics, Biomedical and Dental Application, and Usage of Chitosan in the Treatment of Temporomandibular Joint Disorders: A Narrative Review." Pharmaceutics 14, no. 2 (January 27, 2022): 305. http://dx.doi.org/10.3390/pharmaceutics14020305.
Повний текст джерелаWang, Hezhong, and Maren Roman. "Effects of Chitosan Molecular Weight and Degree of Deacetylation on Chitosan−Cellulose Nanocrystal Complexes and Their Formation." Molecules 28, no. 3 (January 31, 2023): 1361. http://dx.doi.org/10.3390/molecules28031361.
Повний текст джерелаLončarević, Andrea, Karla Ostojić, Inga Urlić, and Anamarija Rogina. "Preparation and Properties of Bimetallic Chitosan Spherical Microgels." Polymers 15, no. 6 (March 16, 2023): 1480. http://dx.doi.org/10.3390/polym15061480.
Повний текст джерелаJaidee, A., Pornchai Rachtanapun, and S. Luangkamin. "1H-NMR Analysis of Degree of Substitution in N,O-Carboxymethyl Chitosans from Various Chitosan Sources and Types." Advanced Materials Research 506 (April 2012): 158–61. http://dx.doi.org/10.4028/www.scientific.net/amr.506.158.
Повний текст джерелаOrtega-Ortiz, Hortensia, Baltazar Gutiérrez-Rodríguez, Gregorio Cadenas-Pliego, and Luis Ibarra Jimenez. "Antibacterial activity of chitosan and the interpolyelectrolyte complexes of poly(acrylic acid)-chitosan." Brazilian Archives of Biology and Technology 53, no. 3 (June 2010): 623–28. http://dx.doi.org/10.1590/s1516-89132010000300016.
Повний текст джерелаCoquery, Clément, Claire Negrell, Nicolas Caussé, Nadine Pébère, and Ghislain David. "Synthesis of new high molecular weight phosphorylated chitosans for improving corrosion protection." Pure and Applied Chemistry 91, no. 3 (March 26, 2019): 509–21. http://dx.doi.org/10.1515/pac-2018-0509.
Повний текст джерелаMati-Baouche, Narimane, Cédric Delattre, Hélène de Baynast, Michel Grédiac, Jean-Denis Mathias, Alina Violeta Ursu, Jacques Desbrières, and Philippe Michaud. "Alkyl-Chitosan-Based Adhesive: Water Resistance Improvement." Molecules 24, no. 10 (May 23, 2019): 1987. http://dx.doi.org/10.3390/molecules24101987.
Повний текст джерелаДисертації з теми "ChitosanNP"
Martinez, Ruvalcaba Agustin. "Rhéologie des solutions de chitosane et des hydrogels de chitosane-xanthane Rheology of chitosan solutions and chitosan-xanthan hydrogels." Sherbrooke : Université de Sherbrooke, 2002.
Знайти повний текст джерелаMalaise, Sébastien. "Small Diameter Vascular Substitues Based on Physical Chitosan Hydrogels : Proof of Concept." Thesis, Lyon 1, 2014. http://www.theses.fr/2014LYO10057.
Повний текст джерелаChitosan presents biological properties (biocompatibility, bioresorbability, bioactivity) ideally suited for tissue engineering. In this partnership study (ANR TECSAN 2010 ChitoArt program), we worked at the elaboration of physical chitosan hydrogels presenting various and controlled physicochemical and biological properties, without any external crosslinkers. These hydrogels are envisioned under mono- or poly-membranous tubes for small diameter vascular substitutes (<6mm) purposes. Indeed, vascular engineering presents, even today, numerous limitations for small calibre vessels. Our strategy consists in the modulation of both structural (degree of acetylation, molar mass) and environmental (neutralization bath and collodion composition and concentration) parameters involved in hydrogels elaboration process in order to reach physical, biological and mechanical requirements suitable for this application. The study of hydrogels morphology by Cryo-Scanning Electron Microscopy (Cryo-SEM), using an original sample preparation method led to a better comprehension of chitosan hydrogels fine structure and multi-scale organization. This fundamental approach was conducted through the in vivo biological evaluation of hydrogels but also to mechanical characterizations of vascular substitutes. In particular, our substitutes were evaluated in term of suture retention resulting in the development of a formulation that led to suturable physical chitosan hydrogels, which were protected by a patent (Deposit number: FR1363099). Hydrogels elaboration parameters control and modulation have resulted in the development of colonisable vascular substitutes matching their in vivo implantation requirements (suture retention, compliance, burst pressure)
Coquery, Clément. "Fonctionnalisation du chitosane : vers un nouveau revêtement biosourcé pour la protection des métaux contre la corrosion." Thesis, Montpellier, Ecole nationale supérieure de chimie, 2018. http://www.theses.fr/2018ENCM0003/document.
Повний текст джерелаCorrosion treatment is an economic, environmental and health safety issue. More widely used on an industrial scale, coating protection consists in isolating the metal from the aggressive medium by an adherent, continuous and impermeable layer. They must have three major properties: 1) be strongly adherent to the metallic substrate, 2) have good barrier properties to limit the penetration of water and aggressive species and 3) provide a role in inhibiting corrosion. However, the protection of metal surfaces by current techniques generates significant pollution due to the use of chromates. The use of bio-based and soluble polymers in aqueous media would be a challenge and would contribute to preserving the environment. Polysaccharides such as chitosan are biodegradable and environmentally friendly macromolecules with anticorrosive properties and are therefore possible alternatives. These theses focus on the development of anticorrosion coatings based on chitosan. Chitosan has two weak points for use as a coating against corrosion: 1) insufficient adhesion on the surface of the materials and 2) hydrophilicity. As a result, chitosan has been chemically modified to increase its adhesion and barrier properties. In order to improve its adhesion on metal substrates, phosphonic acid groups have been added via the Kabachnik-Fields reaction on chitosan. The development of a chitosan with catechol functions was also discussed. Initially, the modified chitosan was tested and characterized by electrochemical impedance spectroscopy (EIS) as a corrosion inhibitor and coatings based on the same chitosan were made and their corrosion protection evaluated. Two approaches of coating elaborations were tested: dip-coating and Layer-by-Layer (LbL). Different ways of functionalizing chitosan have also been presented to increase the barrier properties of the coating. Phthaloylation chemistry of chitosan was described and hydrophobic chain grafting was studied
Malli, Sophia. "Formulations multifonctionnelles pour le traitement des infections parasitaires cutanéo-muqueuses." Thesis, Université Paris-Saclay (ComUE), 2019. http://www.theses.fr/2019SACLS043.
Повний текст джерелаThis project aims at developing new therapeutic strategies against parasitic muco-cutaneous infections such as urogenital trichomonosis and cutaneous leishmaniasis which still represents a major health problem worldwide.Unfortunately, metronidazole (MTZ) is a first-line systemic treatment for urogenital trichomoniasis that causes resistance and side effects. We have thus developed new strategies by acting on both the pharmacological and the physical mechanisms of Trichomonas vaginalis infection. After a successfull increase of the apparent solubility of MTZ in water using a methylated -cyclodextrin, we formulated it in a thermosensitive and mucoadhesive hydrogel composed of pluronic® F127 and a cationic and mucoadhesive biopolymer, chitosan. This formulation is specifically adapted for topical application providing a control of MTZ release and reduction of its systemic passage through the vaginal mucosa.Then, the ability of the high viscosity hydrogel to immobilize T. vaginalis was investigated by video-microscopy. Monitoring the trajectories of each parasite by multiple particle tracking showed the ability of the hydrogel alone or in combination with chitosan to completely immobilize T. vaginalis and to inhibit parasite attachment to the mucosa. These evaluations were performed on mice experimental model. However, chitosan alone did not allow parasite immobilization and did not show any anti-T. vaginalis activity. In this context, we were inspired by previous works conducted by our team on the development of formulations based on chitosan, and more particularly nanoparticles (NPs) composed of poly(isobutylcyanoacrylates) coated with chitosan. These NPs have their own trichomonacidal activity, even without adding active substances, while NPs without chitosan were inactive. Investigated of the mechanism of the activity showed better internalization of NPs when coated with chitosan. These NPs caused drastic morphological alterations on the parasite membrane. This activity could be due to the electrostatic interaction between negatively charged T. vaginalis surface and cationic chitosan coated NPs.In order to broaden the applications of these NPs to other parasites, we were interested in evaluating the anti-L. major activity of NPs coated or not with chitosan. Indeed, chitosan known for its healing properties could be particularly adapted for this pathology. We thus showed in vitro and in vivo that NPs coated with chitosan had intrinsic anti-L. major activity without adding any drug. In a second step, we decided to design chitosan elongated particles and to evaluate their anti-leishmanial activity. These particles called "platelets" are composed of chitosan hydrophobically-modified with oleic acid and cyclodextrin in water. This strategy could be interesting to improve the interaction of platelets with the L. major membrane, as these parasites had also non-spherical morphology. The histological and immunohistochemical results of skin lesions showed a significant decrease in inflammatory granuloma and a reduction in parasitic load compared with amphotericin B alone, used as a reference.In conclusion, during this thesis, several formulations were developed and showed biological activities by acting on pharmacological and/or physical mechanisms of the parasites
Loron, Anne. "Chitosan polymers and plant extracts to develop biofungicides." Thesis, Bordeaux, 2021. http://www.theses.fr/2021BORD0002.
Повний текст джерелаCereals are subject to contamination by pathogenic fungi, which damage grains and threaten the public health with their mycotoxins. Recently, the raise of public and political awareness concerning environmental issues tend to limit the use of traditional fungicides against these pathogens in favour of eco-friendlier alternatives. In this framework, this thesis work aims to create a formulation based on renewable products in order to limit the fungal development and control the production of mycotoxins from cereal fungi. Our work exploits the remarkable properties of three compounds: the chitosan, a chitin derived biopolymer, the tetrahydrocurcumin (THC), a curcumin derivative, and plant extracts. In a first step, we studied and characterise the physicochemical properties of different chitosans. Chitosan solutions were shown to reduce the mycelial growth of a target model fungi Fusarium graminearum, and to divide by 2 the accumulation of mycotoxins. In addition, we showed that this biopolymer was able to maintain its antifungal properties as a form of a coating. In a second step, we focused on different plant extracts with antimicrobial activities. THC was able to inhibit the toxin production and a maritime pine by-product showed its potential to control the fungal growth. The combination of the THC or the wood extract with chitosan was then studied to increase the efficiency of the formulation. To this end, a significant work was made to increase the solubility of THC in water by forming an inclusion complex in cyclodextrins or by protecting it in starch or chitosan particles. In particular, we showed that the addition of pine extracts to a chitosan-based solution can double the effectiveness of the formulation
Rami, Lila. "Qualification d’hydrogels physiques de chitosane et de progéniteurs endothéliaux humains pour l’ingénierie vasculaire." Thesis, Bordeaux 2, 2013. http://www.theses.fr/2013BOR22047.
Повний текст джерелаAbstract
Enache, Alexandru Alin. "Mathematical modelling of the chitosan fiber formation by wet-spinning." Thesis, Lyon, 2018. http://www.theses.fr/2018LYSE1100/document.
Повний текст джерелаChitosan is a natural polymer obtained by deacetylation of chitin. This polysaccharide is well known for its exceptional biological properties: it is biocompatible and bio absorbable. Chitosan fibers can be used in surgery.The objective of this thesis is to study the physicochemical phenomena involved, to develop a process model, to optimize the filtering process in the laboratory.After a review of the literature in the first chapter, the experimental techniques for obtaining, purifying and characterizing chitosan are described in the second chapter. A study of the structure of the chitosan obtained is presented. This is one of the original results of this work.The principle of the coagulation method in solution, it is essential to determine in what condition it, and what is the determining parameter. Previous studies have shown that this is the diffusion coefficient of soda in the medium. One effect, measurements were made, in different geometries. This study constitutes the work presented in Chapter Three.In chapter four is presented a technique consisting in following by means of a microscope the advance of the coagulation front. This technique makes it possible to determine the diffusion coefficient.The last chapter consisted of developing fibers using a small scale plant existing in laboratory (IMP Lyon 1). The final element of this work consists of modelling the process, calculating the inside and outside diameters of the fibers obtained and comparing the result of the modelling with the experimental results
Lalevée, Gautier. "Complexes polyélectrolytes d'acide hyaluronique et de chitosane pour des applications biomédicales." Thesis, Lyon, 2017. http://www.theses.fr/2017LYSE1075.
Повний текст джерелаThis work is devoted to the elaboration of polyelectrolyte complexes systems combining two oppositely-charged polyelectrolytes and to the study of their potential application as - injectable dermal fillers. Hyaluronic acid as polyanion (carboxylic groups -COO as negative charges) was complexed with the only naturally-occuring polycation named + chitosan (amine groups -NH3 as positive charges). The factors impacting the formation of hyaluronic acid - chitosan complexes and their physico-chemical properties were investigated. We used a new technique of complexation developed in the laboratory through the desalting of highly salted mixtures, and systematically investigated the impact of pH in the range 2.5 - 6.5, corresponding to the complexation domain of hyaluronic acid and chitosan. This process allowed the progressive elimination of the salts and the slow restoration of the attractive electrostatic interactions resp onsible for the self-assembly of the two polyelectrolytes. Various physical forms were obtained: macroscopic aggregates, soluble complexes, colloidal suspensions or hydrogels. During this work, we observed for the first time the formation of hyaluronic acid-chitosan hydrogels exhibiting a very unusual hyper-stretchability, only at acidic pH. Therefore, an alternate approach consisted in taking advantage of the chitosan ability to gel in alkaline medium. By using a similar process, we were then able to form physically-crosslinked hyaluronic acid-chitosan hydrogels stable at physiological pH and osmolarity and still able to undergo high deformations. Moreover, these systems could be submitted to steam sterilization and could be formulated so as to be injectable. Hence, these hydrogels gathered all the conditions to be good candidates as injectable biomaterials, these hydrogels were then tested in vivo on a rabbit model to evaluate their biocompatibility and suitability for intradermal applications
Mati-Baouche, Narimane. "Conception d'isolants thermiques à base de broyats de tiges de tournesol et de liants polysaccharidiques." Thesis, Clermont-Ferrand 2, 2015. http://www.theses.fr/2015CLF22548/document.
Повний текст джерелаOne of the issues relating to the sustainability of thermal insulation in the building industry is the use of composites derived from agricultural resources. These composites are typically agglomerated with mineral binders or from synthesis. To explore the use of polysaccharide binders for the conception of insulation panels based one sunflower stem aggregates (reinforcement), chitosan has been chosen as polysaccharide model. After a first stage of physico-chemical, thermal and mechanical characterizations of the binder and the reinforcement, an experimental design was established to find the best values of the particle size, the ratio binder/reinforcement and the compaction stress affecting the thermo-mechanical properties of the composites. A composite with a thermal insulation of about 0.06 W.m-1.K-1 and a maximum strength (in tension and compression modes) of 2 MPa was obtained with a ratio chitosan/sunflower stalk aggregates of 4.3 % and a size of 6.3 mm for the aggregates. The mechanical and thermal performances are superior to that of other biobased insulators available on the market. Formulation of the binder by covalent crosslinking (genipin) and by the addition of other biopolymers (alginate, guar gum, starch) with binding property has been achieved through the development of a fractional factorial experimental design. The results show the ability to maintain satisfactory mechanical and thermal properties with reducing chitosan content
He, Jing. "Des (bio)nano-composites utilisés dans le traitement d'eaux contaminées par de l'arsenic/gentamicine ou pour des applications médicales." Phd thesis, Université de Grenoble, 2013. http://tel.archives-ouvertes.fr/tel-00988092.
Повний текст джерелаКниги з теми "ChitosanNP"
1927-, Jollès Pierre, and Muzzarelli, Riccardo A. A., 1937-, eds. Chitin and Chitinases. Basel: Birkhäuser Verlag, 1999.
Знайти повний текст джерела1927-, Jollès Pierre, and Muzzarelli, Riccardo A. A., 1937-, eds. Chitin and Chitinases. Basel: Birkhäuser Verlag, 1999.
Знайти повний текст джерелаAhmed, Shakeel, and Saiqa Ikram, eds. Chitosan. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.
Повний текст джерелаJana, Sougata, and Subrata Jana, eds. Functional Chitosan. Singapore: Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-15-0263-7.
Повний текст джерелаHasan, Shameem, Veera M. Boddu, Dabir S. Viswanath, and Tushar K. Ghosh. Chitin and Chitosan. Cham: Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-031-01229-7.
Повний текст джерелаSamoilova, N. A. Interpolyelectrolyte complexes of chitosan. New York: Nova Science Publishers, 2011.
Знайти повний текст джерелаJayakumar, R., and M. Prabaharan, eds. Chitosan for Biomaterials IV. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-83021-2.
Повний текст джерелаJayakumar, R., and M. Prabaharan, eds. Chitosan for Biomaterials III. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-83807-2.
Повний текст джерелаGulati, Shikha, ed. Chitosan-Based Nanocomposite Materials. Singapore: Springer Nature Singapore, 2022. http://dx.doi.org/10.1007/978-981-19-5338-5.
Повний текст джерелаЧастини книг з теми "ChitosanNP"
Annu, Shakeel Ahmed, Shakeel Ahmed, and Saiqa Ikram. "Chitin and Chitosan: History, Composition and Properties." In Chitosan, 1–24. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch1.
Повний текст джерелаSudha, Parappurath Narayanan, Madhavan Saranya, Thandapani Gomathi, S. Gokila, Soundararajan Aisverya, Jayachandran Venkatesan, and Sukumaran Anil. "Perspectives of Chitin- and Chitosan-Based Scaffolds Dressing in Regenerative Medicine." In Chitosan, 253–69. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch10.
Повний текст джерелаBulbake, Upendra, Sindhu Doppalapudi, and Wahid Khan. "Chitin - and Chitosan-Based Scaffolds." In Chitosan, 271–310. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch11.
Повний текст джерелаPutri, Athika Darumas, Bayu Tri Murti, Myalowenkosi Sabela, Suvardhan Kanchi, and Krishna Bisetty. "Nanopolymer Chitosan in Cancer and Alzheimer Biomedical Application." In Chitosan, 311–59. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch12.
Повний текст джерелаMajeed, Aasim, Raoof Ahmad Najar, Shruti Choudhary, Sapna Thakur, Amandeep Singh, and Pankaj Bhardwaj. "Biomedical Significance of Chitin- and Chitosan-Based Nanocomposites." In Chitosan, 361–84. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch13.
Повний текст джерелаSingh, Gulshan, Murli Manohar, Suresh Kumar Arya, Waseem Ahmad Siddiqui, and Thor Axel Stenström. "Potential Biomedical Applications of Chitosan - and Chitosan-Based Nanomaterials." In Chitosan, 385–408. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch14.
Повний текст джерелаMajeed, Aasim, Raoof Ahmad Najar, Shruti Choudhary, Wahid Ul Rehman, Amandeep Singh, Sapna Thakur, and Pankaj Bhardwaj. "Practical and Plausible Implications of Chitin- and Chitosan-Based Nanocomposites in Agriculture." In Chitosan, 409–30. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch15.
Повний текст джерелаGadkari, Rahul, Wazed Ali, Apurba Das, and R. Alagirusamy. "Scope of Electrospun Chitosan Nanofibrous Web for its Potential Application in Water Filtration." In Chitosan, 431–51. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch16.
Повний текст джерелаSudha, Parappurath Narayanan, Soundararajan Aisverya, Thandapani Gomathi, Kumar Vijayalakshmi, Madhavan Saranya, Kirubanandam Sangeetha, Srinivasan Latha, and Sabu Thomas. "Application of Chitin/Chitosan and Its Derivatives as Adsorbents, Coagulants, and Flocculants." In Chitosan, 453–87. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch17.
Повний текст джерелаIoelovich, Michael. "Nitrogenated Polysaccharides - Chitin and Chitosan, Characterization and Application." In Chitosan, 25–70. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119364849.ch2.
Повний текст джерелаТези доповідей конференцій з теми "ChitosanNP"
Ren, Xiang, Qingwei Zhang, Ho-lung Li, and Jack Zhou. "Micro and Nano Design and Fabrication of a Novel Artificial Photosynthesis Device." In ASME 2012 International Manufacturing Science and Engineering Conference collocated with the 40th North American Manufacturing Research Conference and in participation with the International Conference on Tribology Materials and Processing. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/msec2012-7394.
Повний текст джерелаFaria, Roberto Ribeiro, Lourival Rodrigues de Sousa Neto, Victor de Sousa Batista, Keli Cristina Barbosa dos Reis, and Odonírio Abrahão Junior. "Potential Mean Force for Chitosan and Glyphosate." In VIII Simpósio de Estrutura Eletrônica e Dinâmica Molecular. Universidade de Brasília, 2020. http://dx.doi.org/10.21826/viiiseedmol2020164.
Повний текст джерелаGanapathy, Ramanan, and Ahmet Aykaç. "Depolymerisation of High Molecular Weight Chitosan and Its Impact on Purity and Deacetylation." In 6th International Students Science Congress. Izmir International Guest Student Association, 2022. http://dx.doi.org/10.52460/issc.2022.048.
Повний текст джерелаChoi, Ung-su, and Hans Conrad. "Electrorheology of Chitin and Chitosan Suspensions: Conductivity vs Molecular Structure." In ASME 1998 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 1998. http://dx.doi.org/10.1115/imece1998-0458.
Повний текст джерелаWang, Jing-song, Zheng-lei Bao, Si-guang Chen, and Jin-hui Yang. "Removal of Uranium From Aqueous Solution by Chitosan and Ferrous Ions." In 18th International Conference on Nuclear Engineering. ASMEDC, 2010. http://dx.doi.org/10.1115/icone18-30305.
Повний текст джерелаTan, Shiou Xuan, Andri Andriyana, Steven Lim, Hwai Chyuan Ong, Yean Ling Pang, and Gek Cheng Ngoh. "Natural Deep Eutectic Solvent (NADES) as Plasticizer for Bioplastic Film Fabrication. A Comparative Study." In International Technical Postgraduate Conference 2022. AIJR Publisher, 2022. http://dx.doi.org/10.21467/proceedings.141.23.
Повний текст джерелаBrysch, Cynthia, Eric Wold, Francisco C. Robles Hernandez, and John F. Eberth. "Sintering of Chitosan and Chitosan Composites." In ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-86393.
Повний текст джерелаRen, Xiang, Miao Yu, Xiaohang Zhou, Qingwei Zhang, and Jack Zhou. "Fabrication of Chitosan Porous Structure and Applications on Artificial Photosynthesis Device." In ASME 2013 International Manufacturing Science and Engineering Conference collocated with the 41st North American Manufacturing Research Conference. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/msec2013-1109.
Повний текст джерелаVrabič Brodnjak, Urška, and Dimitrina Todorova. "Investigation of the optical properties of chitosan and rice starch blends, as a filler in paper or as a film for packaging applications." In 10th International Symposium on Graphic Engineering and Design. University of Novi Sad, Faculty of technical sciences, Department of graphic engineering and design,, 2020. http://dx.doi.org/10.24867/grid-2020-p5.
Повний текст джерелаIancu, Irina Mihaela, Laura Adriana Bucur, Verginica Schröder, and Manuela Rossemary Apetroaei. "STUDIES OF MUCOADHEZIVE MATRIXES BASED ON CHITOSAN AND LYTHRUM SALICARIA L. PLANT EXTRACT." In GEOLINKS Conference Proceedings. Saima Consult Ltd, 2021. http://dx.doi.org/10.32008/geolinks2021/b1/v3/24.
Повний текст джерелаЗвіти організацій з теми "ChitosanNP"
Thomas, Catherine C., Jonathan Broussard, and Victor F. Medina. Chitosan as a Coagulant and Precipitant of Algae Present in Backwater. U.S. Army Engineer Research and Development Center, July 2022. http://dx.doi.org/10.21079/11681/44904.
Повний текст джерелаCabrera, Anahi Maldonado, Blayra Maldonado Cabrera, Dalia Isabel Sánchez Machado, and Jaime López Cervantes. Wound healing therapeutic effect of chitosan nanofibers: a systematic review and meta- analysis of animal studies. INPLASY - International Platform of Registered Systematic Review and Meta-analysis Protocols, October 2022. http://dx.doi.org/10.37766/inplasy2022.10.0121.
Повний текст джерелаLewis, Terry W. Hemostatic Activity of Chitosan in Wound Management. Fort Belvoir, VA: Defense Technical Information Center, March 1989. http://dx.doi.org/10.21236/ada211370.
Повний текст джерелаPoverenov, Elena, Tara McHugh, and Victor Rodov. Waste to Worth: Active antimicrobial and health-beneficial food coating from byproducts of mushroom industry. United States Department of Agriculture, January 2014. http://dx.doi.org/10.32747/2014.7600015.bard.
Повний текст джерелаNarayan, Mayur. Hydrophobically Modified Chitosan Gauze for Control of Massive Hemorrhage. Fort Belvoir, VA: Defense Technical Information Center, January 2016. http://dx.doi.org/10.21236/ada629307.
Повний текст джерелаYoncheva, Krassimira. Benefits and Perspectives of Nanoparticles Based on Chitosan and Sodium Alginate. "Prof. Marin Drinov" Publishing House of Bulgarian Academy of Sciences, March 2020. http://dx.doi.org/10.7546/crabs.2020.03.01.
Повний текст джерелаMattei-Sosa, Jose, Victor Medina, Chris Griggs, and Veera Gude. Crosslinking graphene oxide and chitosan to form scalable water treatment membranes. Engineer Research and Development Center (U.S.), July 2019. http://dx.doi.org/10.21079/11681/33263.
Повний текст джерелаOliveira, Mariana, Vívian Souza, Guilherme Tavares, Rodrigo Fabri, and Ana Carolina Apolônio. Effects of antibiotic-loaded chitosan nanoparticles against resistant bacteria: a systematic review. INPLASY - International Platform of Registered Systematic Review and Meta-analysis Protocols, June 2021. http://dx.doi.org/10.37766/inplasy2021.6.0069.
Повний текст джерелаBumgardner, Joel D. Dual Delivery of Growth Factors and or Antibiotics from Chitosan-Composites for Bone Regeneration. Fort Belvoir, VA: Defense Technical Information Center, October 2010. http://dx.doi.org/10.21236/ada532903.
Повний текст джерелаKlepzig, Kier D., and Charles H. Walkinshaw. Cellular response of loblolly pine to wound inoculation with bark beetle-associated fungi and chitosan. Asheville, NC: U.S. Department of Agriculture, Forest Service, Southern Research Station, 2003. http://dx.doi.org/10.2737/srs-rp-30.
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