يعرض 1 - 20 نتائج من 60 نتيجة بحث عن '"Durán Esteban, A"', وقت الاستعلام: 0.37s تنقيح النتائج
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    Academic Journal

    المصدر: ConcienciaDigital; Vol. 6 Núm. 4.1 (2023): Desconexión Digital; 6-25 ; ConcienciaDigital; Vol. 6 No. 4.1 (2023): Desconexión Digital; 6-25 ; ConcienciaDigital; v. 6 n. 4.1 (2023): Desconexión Digital; 6-25 ; 2600-5859 ; 10.33262/concienciadigital.v6i4.1

    وصف الملف: application/pdf; text/plain; application/epub+zip

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    المساهمون: Chaumon, Maximilien, Rioux, Pier-Alexandre, Herbst, Sophie K, Spiousas, Ignacio, Kübel, Sebastian L, Gallego Hiroyasu, Elisa M, Runyun, Şerife Leman, Micillo, Luigi, Thanopoulos, Vassili, Mendoza-Duran, Esteban, Wagelmans, Anna, Mudumba, Ramya, Tachmatzidou, Ourania, Cellini, Nicola, D'Argembeau, Arnaud, Giersch, Anne, Grondin, Simon, Gronfier, Claude, Igarzábal, Federico Alvarez, Klarsfeld, André, Jovanovic, Ljubica, Laje, Rodrigo, Lannelongue, Elisa, Mioni, Giovanna, Nicola, Cyril, Srinivasan, Narayanan, Sugiyama, Shogo, Wittmann, Marc, Yotsumoto, Yuko, Vatakis, Argiro, Balcı, Fuat, van Wassenhove, Virginie

    وصف الملف: STAMPA

    Relation: info:eu-repo/semantics/altIdentifier/pmid/35970902; info:eu-repo/semantics/altIdentifier/wos/WOS:000840579100001; journal:NATURE HUMAN BEHAVIOUR; http://hdl.handle.net/11577/3454037; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85135938402; https://www.nature.com/articles/s41562-022-01419-2

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    Academic Journal
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    Academic Journal

    المساهمون: Institut de Recerca en Energía de Catalunya, Universitat Politècnica de Catalunya. Departament d'Enginyeria Electrònica, Universitat Politècnica de Catalunya. MNT - Grup de Recerca en Micro i Nanotecnologies

    وصف الملف: 6 p.; application/pdf

    Relation: https://pubs.rsc.org/en/content/articlelanding/2021/TC/D1TC00880C; Ojeda, E. [et al.]. High efficiency Cu2ZnSnS4 solar cells over FTO substrates and their CZTS/CdS interface passivation via thermal evaporation of Al2O3. "Journal of materials chemistry C", 28 Abril 2021, vol. 9, p. 5356-5361.; http://hdl.handle.net/2117/361227

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    Academic Journal
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    Academic Journal

    المساهمون: Social Sciences and Humanities Research Council of Canada, Natural Sciences and Engineering Research Council of Canada

    المصدر: Frontiers in Psychology ; volume 11 ; ISSN 1664-1078

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    Academic Journal
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    Dissertation/ Thesis

    المؤلفون: Aguirre Dúran, Esteban Felipe

    المساهمون: Malagón Romero, Dionisio Humberto, orcid:0000-0003-2890-2180, https://scholar.google.es/citations?user=b0ldFjcAAAAJ&hl=es, http://scienti.colciencias.gov.co:8081/cvlac/visualizador/generarCurriculoCv.do?cod_rh=0000167061, Universidad Santo Tomás

    جغرافية الموضوع: CRAI-USTA Bogotá

    وصف الملف: application/pdf

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Upton, “Stinging nettles leaf (Urtica dioica L.): Extraordinary vegetable medicine,” J. Herb. Med., 2013.; N. A. Salih, “Effect of nettle (Urtica dioica) extract on gentamicin induced nephrotoxicity in male rabbits,” Asian Pac. J. Trop. Biomed., 2015.; Ahmed A. Abdeltawab, “Evaluation of the chemical composition and element analysis of Urtica dioica,” African J. Pharm. Pharmacol., vol. 6, no. 21, pp. 1555–1558, 2012.; S. Đurović et al., “Chemical composition of stinging nettle leaves obtained by different analytical approaches,” J. Funct. Foods, vol. 32, pp. 18–26, 2017.; S. Polat, “An in vitro evaluation of the effects of Urtica dioica and Fructus Urtica Piluliferae extracts on the crystallization of calcium oxalate,” J. Cryst. Growth, vol. 522, no. April, pp. 92–102, 2019.; R. Kargozar, R. Salari, L. Jarahi, M. Yousefi, and S. Azam, “Complementary Therapies in Medicine Urtica dioica in comparison with placebo and acupuncture : A new possibility for menopausal hot flashes : A randomized clinical trial,” Complement. Ther. Med., vol. 44, no. January, pp. 166–173, 2019.; B. Mansoori et al., “ScienceDirect Urtica dioica extract suppresses miR-21 and metastasis-related genes in breast cancer,” Biomed. Pharmacother., vol. 93, pp. 95–102, 2017.; C. Bourgeois et al., “L’ortie (Urtica dioica L.), une source de produits antioxidants et phytochimiques anti-âge pour des applications en cosmétique,” Comptes Rendus Chim., vol. 19, no. 9, pp. 1090–1100, 2016.; M. K. Akalin, S. Karagöz, and M. Akyüz, “Application of response surface methodology to extract yields from stinging nettle under supercritical ethanol conditions,” J. Supercrit. Fluids, 2013.; N. Di Virgilio, E. G. Papazoglou, Z. Jankauskiene, S. Di Lonardo, M. Praczyk, and K. Wielgusz, “The potential of stinging nettle (Urtica dioica L.) as a crop with multiple uses,” Ind. Crops Prod., 2015.; C. C. XU, B. WANG, Y. Q. PU, J. S. TAO, and T. ZHANG, “Advances in extraction and analysis of phenolic compounds from plant materials,” Chin. J. Nat. Med., vol. 15, no. 10, pp. 721–731, 2017.; U. J. Vajić et al., “Optimization of extraction of stinging nettle leaf phenolic compounds using response surface methodology,” Ind. Crops Prod., 2015.; T. T. Shonte, K. G. Duodu, and H. L. de Kock, “Effect of drying methods on chemical composition and antioxidant activity of underutilized stinging nettle leaves,” Heliyon, vol. 6, no. 5, 2020.; M. Chaijan, K. Srirattanachot, M. Nisoa, L. Z. Cheong, and W. Panpipat, “Role of antioxidants on physicochemical properties and in vitro bioaccessibility of β-carotene loaded nanoemulsion under thermal and cold plasma discharge accelerated tests,” Food Chem., vol. 339, no. September 2020, p. 128157, 2021.; M. A. T. Phan, M. Bucknall, and J. Arcot, “Interactive effects of β-carotene and anthocyanins on cellular uptake, antioxidant activity and anti-inflammatory activity in vitro and ex vivo,” J. Funct. Foods, vol. 45, no. February, pp. 129–137, 2018.; C. Ba et al., “Effects of environmental stresses on physiochemical stability of β-carotene in zein-carboxymethyl chitosan-tea polyphenols ternary delivery system,” Food Chem., vol. 311, p. 125878, 2020.; N. Y. Lee, Y. Kim, Y. S. Kim, J. H. Shin, L. P. Rubin, and Y. Kim, “β-Carotene exerts anti-colon cancer effects by regulating M2 macrophages and activated fibroblasts,” J. Nutr. Biochem., vol. 82, p. 108402, 2020.; U. Blume-Peytavi et al., “Cutaneous lycopene and β-carotene levels measured by resonance Raman spectroscopy: High reliability and sensitivity to oral lactolycopene deprivation and supplementation,” Eur. J. Pharm. Biopharm., vol. 73, no. 1, pp. 187–194, 2009.; J. V. Freitas, F. S. G. Praça, M. V. L. B. Bentley, and L. R. Gaspar, “Trans-resveratrol and beta-carotene from sunscreens penetrate viable skin layers and reduce cutaneous penetration of UV-filters,” Int. J. Pharm., vol. 484, no. 1–2, pp. 131–137, 2015.; E. J. Baek, C. V. Garcia, G. H. Shin, and J. T. Kim, “Improvement of thermal and UV-light stability of β-carotene-loaded nanoemulsions by water-soluble chitosan coating,” Int. J. Biol. Macromol., vol. 165, pp. 1156–1163, 2020.; H. Phan-thi, P. Durand, M. Prost, E. Prost, and Y. Waché, “Effect of heat-processing on the antioxidant and prooxidant activities of b -carotene from natural and synthetic origins on red blood cells,” Food Chem., vol. 190, pp. 1137–1144, 2016.; H. Sovová, M. Sajfrtová, M. Bártlová, and L. Opletal, “Near-critical extraction of pigments and oleoresin from stinging nettle leaves,” J. Supercrit. Fluids, vol. 30, no. 2, pp. 213–224, 2004.; R. Li et al., “Combining Ability and Parent-Offspring Correlation of Maize (Zea may L.) Grain β-Carotene Content with a Complete Diallel,” J. Integr. Agric., vol. 12, no. 1, pp. 19–26, 2013.; R. F. Martini and M. R. Wolf-Maciel, “A new methodology for mixture characterization and solvent screening for separation process application,” Comput. Chem. Eng., vol. 20, no. SUPPL.1, pp. 219–224, 1996.; J. L. Guil-Guerrero, M. M. Rebolloso-Fuentes, and M. E. Torija Isasa, “Fatty acids and carotenoids from Stinging Nettle (Urtica dioica L.),” J. Food Compos. Anal., vol. 16, no. 2, pp. 111–119, 2003.; N. B. Ibrahim and Y. Noratiqah, “The microstructure and magnetic properties of yttrium iron garnet film prepared using water-alcohol solvents,” J. Magn. Magn. Mater., vol. 510, no. April, p. 166953, 2020.; J. Branisa, K. Jomova, M. Porubska, V. Kollar, M. Simunkova, and M. Valko, “Effect of drying methods on the content of natural pigments and antioxidant capacity in extracts from medicinal plants: A spectroscopic study,” Chem. Pap., vol. 71, no. 10, pp. 1993–2002, 2017.; K. KŐszegi, G. Vatai, and E. BÉkÁssy-MolnÁr, “Comparison the soxhlet and supercritical fluid extraction of nettle root (Urtica dioica L.),” Period. Polytech. Chem. Eng., vol. 59, no. 3, pp. 168–173, 2015.; A. E. Ince, S. Sahin, and G. Sumnu, “Comparison of microwave and ultrasound-assisted extraction techniques for leaching of phenolic compounds from nettle,” J. Food Sci. Technol., vol. 51, no. 10, pp. 2776–2782, 2014.; I. Alibas, “Energy Consumption and Colour Characteristics of Nettle Leaves during Microwave, Vacuum and Convective Drying,” Biosyst. Eng., vol. 96, no. 4, pp. 495–502, 2007.; I. Nencu, L. M. Popescu, V. Istudor, T. Costea, L. E. D. U. Ţ. U, and C. E. Gîrd, “The selection of thechnological parameters in order to obtain an extract with important antioxidant activity from stinging nettle leaves.,” vol. 65, 2017.; M. Sajfrtová, H. Sovová, L. Opletal, and M. Bártlová, “Near-critical extraction of β-sitosterol and scopoletin from stinging nettle roots,” J. Supercrit. Fluids, 2005.; W. Chen, Y. Liu, L. Song, M. Sommerfeld, and Q. Hu, “Automated accelerated solvent extraction method for total lipid analysis of microalgae,” Algal Res., vol. 51, no. August, p. 102080, 2020.; L. Duan, L. L. Dou, L. Guo, P. Li, and E. H. Liu, “Comprehensive Evaluation of Deep Eutectic Solvents in Extraction of Bioactive Natural Products,” ACS Sustain. Chem. Eng., vol. 4, no. 4, pp. 2405–2411, 2016.; I. Lee, Y. K. Oh, and J. I. Han, “Design optimization of hydrodynamic cavitation for effectual lipid extraction from wet microalgae,” J. Environ. Chem. Eng., vol. 7, no. 2, p. 102942, 2019.; J. Choi et al., “Hybrid reactor based on hydrodynamic cavitation, ozonation, and persulfate oxidation for oxalic acid decomposition during rare-earth extraction processes,” Ultrason. Sonochem., vol. 52, no. August 2018, pp. 326–335, 2019.; K. E. Preece, N. Hooshyar, A. J. Krijgsman, P. J. Fryer, and N. J. Zuidam, “Intensification of protein extraction from soybean processing materials using hydrodynamic cavitation,” Innov. Food Sci. Emerg. Technol., vol. 41, pp. 47–55, 2017.; M. Talebian, T. Abbasiasl, S. Niazi, and M. Ghorbani, “Direct and indirect thermal applications of hydrodynamic and acoustic cavitation : A review,” vol. 171, no. January, 2020.; B. Lixin, Y. Jiuchun, Z. Zhijie, and M. Yuhang, “Cavitation in thin liquid layer : A review,” Ultrason. Sonochem., p. 105092, 2020.; V. V. V. Cravotto Giancarlo, Cravotto Christian, “Ultrasound- and Hydrodynamic-Cavitation Assisted Extraction in food Processing,” Elsevier 1.22, pp. 359–366, 2021.; V. Saharan, M. Badve, and A. Pandit, Degradation of Reactive Red 120 dye using Hydrodynamic cavitation, vol. 178. 2011.; J. Carpenter and V. Kumar, “Study of Cavity dynamics in a Hydrodynamic Cavitation Reactor,” vol. 1, no. 3, pp. 37–43, 2017.; A. Paulauskienė, Ž. Tarasevičienė, and V. Laukagalis, “Influence of harvesting time on the chemical composition of wild stinging nettle (Urtica dioica L.),” Plants, vol. 10, no. 4, 2021.; M. Hojnik, M. Škerget, and Ž. Knez, “Isolation of chlorophylls from stinging nettle (Urtica dioica L.),” Sep. Purif. Technol., 2007.; E. Food et al., “Scientific Opinion on the re-evaluation of chlorophylls (E 140(i)) as food additives,” EFSA J., vol. 13, no. 5, pp. 1–51, 2015.; S. M. Nadakatti, J. H. Kim, and S. A. Stern, “Solubility of light gases in poly ( n-butyl methacrylate ) at elevated pressures,” J. Memb. Sci., vol. 108, pp. 279–291, 1995.; S. Zeipiņa, I. Alsiņa, and L. Lepse, “Stinging nettle - the source of biologically active compounds as sustainable daily diet supplement,” Res. Rural Dev., vol. 1, pp. 34–38, 2014.; D. Mihaylova et al., “Carotenoids, tocopherols, organic acids, carbohydrate and mineral content in different medicinal plant extracts,” Zeitschrift fur Naturforsch. - Sect. C J. Biosci., vol. 73, no. 11–12, pp. 439–448, 2018.; A. D. E. Felipe, N. Galeano, G. Astrid, and M. Dionisio, “Obtaining nettle extracts ( Urtica dioica L ) by means of hydrocavitation.”retroexcavadoras [Trabajo de Pregrado Ingeniería Mecanica]. Repositorio institucional.; http://hdl.handle.net/11634/34996; reponame:Repositorio Institucional Universidad Santo Tomás; instname:Universidad Santo Tomás; repourl:https://repository.usta.edu.co

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