يعرض 1 - 20 نتائج من 134 نتيجة بحث عن '"exfoliación"', وقت الاستعلام: 0.59s تنقيح النتائج
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    Academic Journal
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    Academic Journal
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    Academic Journal
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    Book

    المؤلفون: Pariona Bendezu, Lucy Edith

    المساهمون: Mendoza García, Miguel Angel

    المصدر: Universidad Peruana Los Andes ; Repositorio Institucional - UPLA

    وصف الملف: application/pdf

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    Book

    المساهمون: López Gonzáles, Chirstian Willy

    المصدر: Universidad Peruana Los Andes ; Repositorio Institucional - UPLA

    وصف الملف: application/pdf

  6. 6
    Conference
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    Academic Journal
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    Dissertation/ Thesis
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    Academic Journal
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    Dissertation/ Thesis
  11. 11
    Dissertation/ Thesis

    المساهمون: Hernández Pico, Yenny Rocio, Ramírez Rojas, Juan Gabriel, Facultad de Ciencias

    وصف الملف: 46 páginas; application/pdf

    Relation: C. D. G. B. D. Cullity, Introduction to magnetic materials. Wiley-IEEE Press, 2 ed., 2008.; D. Jiles, Introduction to Magnetism and Magnetic Materials. Taylor Francis Group, 3 ed., 2015.; Y. Chen and M. Sun, “Two-dimensional ws2/mos2 heterostructures: properties and applications,” Nanoscale, vol. 13, pp. 5594–5619, 2021.; V. Gómez, R. Darío, and Y. R. Hernandez, “Ferromagnetismo a temperatura ambiente en nanoestructuras: Bi2te3 y grafeno.” 5 2023.; B. Shabbir, M. Nadeem, Z. Dai, M. S. Fuhrer, Q.-K. Xue, X. Wang, and Q. Bao, “Long range intrinsic ferromagnetism in two dimensional materials and dissipationless future technologies,” Applied Physics Reviews, vol. 5, p. 041105, 11 2018.; D. Tarling and F. Hrouda, Magnetic Anisotropy of Rocks. Springer Netherlands, 1993.; C. Ávila Bernal, “Notas de clase: Fundamentos de electrodinámica introducción a electrodinámica clásica.” Notas de clase, 2024.; M. Hofmann, W.-Y. Chiang, N. Tuân, and Y.-P. Hsieh, “Controlling the properties of graphene produced by electrochemical exfoliation,” Nanotechnology, vol. 26, p. 335607, 07 2015.; H. Chen, J. Zhang, D. Kan, J. He, M. Song, J. Pang, S. Wei, and K. Chen, “The recent progress of two-dimensional transition metal dichalcogenides and their phase transition,” Crystals, vol. 12, no. 10, 2022.; A. B. K. Viera Skakalova, Graphene: Properties, Preparation, Characterisation and Devices. Woodhead Publishing Series in Electronic and Optical Materials,Woodhead Publishing, 1 ed., 2014.; Y. Wang and J. Yi, “Chapter 4 - ferromagnetism in two-dimensional materials via doping and defect engineering,” in Spintronic 2D Materials (W. Liu and Y. Xu, eds.), Materials Today, pp. 95–124, Elsevier, 2020.; S. Manzeli, D. Ovchinnikov, D. Pasquier, O. V. Yazyev, and A. Kis, “2d transition metal dichalcogenides,” Nature Reviews Materials, vol. 2, p. 17033, Jun 2017.; E. Ashalley, H. Chen, X. Tong, H. Li, and Z. M. Wang, “Bismuth telluride nanostructures: preparation, thermoelectric properties and topological insulating effect,” Frontiers of Materials Science, vol. 9, pp. 103–125, Jun 2015.; Y. Hosokawa, K. Tomita, and M. Takashiri, “Growth of single-crystalline bi2te3 hexagonal nanoplates with and without single nanopores during temperature-controlled solvothermal synthesis,” Scientific Reports, vol. 9, p. 10790, Jul 2019.; D. Teweldebrhan, V. Goyal, and A. A. Balandin, “Exfoliation and characterization of bismuth telluride atomic quintuples and quasi-two-dimensional crystals,” Nano Letters, vol. 10, pp. 1209–1218, Apr 2010.; F. Liu, C. Wang, X. Sui, A. Riaz, M. Xu, L. Wei, and Y. Chen, “Synthesis of graphene materials by electrochemical exfoliation: Recent progress and future potential,” Carbon Energy, vol. 1, 10 2019.; C.-Y. Su, A.-Y. Lu, Y. Xu, F.-R. Chen, A. N. Khlobystov, and L.-J. Li, “High-quality thin graphene films from fast electrochemical exfoliation,” ACS nano, vol. 5, no. 3, pp. 2332–2339, 2011.; K. Parvez, S. Yang, X. Feng, and K. Müllen, “Exfoliation of graphene via wet chemical routes,” Synthetic Metals, vol. 210, pp. 123–132, 2015. Reviews of Current Advances in Graphene Science and Technology.; M. Rajapakse, B. Karki, U. O. Abu, S. Pishgar, M. R. K. Musa, S. M. S. Riyadh, M. Yu, G. Sumanasekera, and J. B. Jasinski, “Intercalation as a versatile tool for fabrication, property tuning, and phase transitions in 2d materials,” npj 2D Materials and Applications, vol. 5, p. 30, Mar 2021.; Z. Zeng, Z. Yin, X. Huang, H. Li, Q. He, G. Lu, F. Boey, and H. Zhang, “Single-layer semiconducting nanosheets: High-yield preparation and device fabrication,” Angewandte Chemie (International ed. in English), vol. 50, pp. 11093–7, 11 2011.; M. S. Stark, K. L. Kuntz, S. J. Martens, and S. C. Warren, “Intercalation of layered materials from bulk to 2d,” Advanced Materials, vol. 31, no. 27, p. 1808213, 2019.; A. Jawaid, D. Nepal, K. Park, M. Jespersen, A. Qualley, P. Mirau, L. F. Drummy, and R. A. Vaia, “Mechanism for liquid phase exfoliation of mos2,” Chemistry of materials, vol. 28, no. 1, pp. 337–348, 2016.; D. C. Harris, Quantitative Chemical Analysis. 41 Madison Avenue New York, NY 10010: W. H. Freeman and Company, 8 ed., 2010.; M.-Y. Li, C.-H. Chen, Y. Shi, and L.-J. Li, “Heterostructures based on twodimensional layered materials and their potential applications,” Materials Today, vol. 19, no. 6, pp. 322–335, 2016.; K. S. Novoselov, A. Mishchenko, A. Carvalho, and A. H. C. Neto, “2d materials and van der waals heterostructures,” Science, vol. 353, no. 6298, p. aac9439, 2016.; J. M. C. Ruiz, “Efecto de la adición de películas delgadas de bi2te3 en el coeficiente seebeck del grafeno.” 5 2022.; T. R. Cruz, “Fabricación de dispositivos optoelectrónicos flexibles basados en dicalcogenuros de metales de transición.” 7 2021.; M. U. de los Andes, “Equipos del centro de microscopía %7C microcore %7C uniandes.”; J. Rico, M. Castaño-Soto, N. Lopez-Arango, and Y. Hernandez, “Influence of c=o groups on the optical extinction coefficient of graphene exfoliated in liquid phase,” Journal of Physics: Condensed Matter, vol. 34, 12 2021.; N. Dong, Y. Li, Y. Feng, S. Zhang, X. Zhang, C. Chang, J. Fan, L. Zhang, and J. Wang, “Optical limiting and theoretical modelling of layered transition metal dichalcogenide nanosheets,” Scientific Reports, vol. 5, p. 14646, Sep 2015.; L. Ren, X. Qi, Y. Liu, G. Hao, Z. Huang, X. Zou, L. Yang, J. Li, and J. Zhong, “Largescale production of ultrathin topological insulator bismuth telluride nanosheets by a hydrothermal intercalation and exfoliation route,” J. Mater. Chem., vol. 22, pp. 4921–4926, 2012.; D. Gao, M. Si, J. Li, J. Zhang, Z. Zhang, Z. Yang, and D. Xue, “Ferromagnetism in freestanding mos2 nanosheets,” Nanoscale Research Letters, vol. 8, p. 129, Mar 2013.; R. Siburian, H. Sihotang, S. L. Raja, M. Supeno, and C. Simanjuntak, “New route to synthesize of graphene nano sheets,” Oriental journal of chemistry, vol. 34, pp. 182–187, 2018.; F. Huang, J. Jian, and R. Wu, “Few-layer thick ws2 nanosheets produced by intercalation/ exfoliation route,” Journal of Materials Science, vol. 51, 11 2016.; https://hdl.handle.net/1992/74517; instname:Universidad de los Andes; reponame:Repositorio Institucional Séneca; repourl:https://repositorio.uniandes.edu.co/

  12. 12
    Dissertation/ Thesis

    المؤلفون: Franco Salinas, Rubén Darío

    المساهمون: Hernández Pico, Yenny Rocio, Patiño Zapata, Edgar Javier

    وصف الملف: 25 páginas; application/pdf

    Relation: J. Scott. “Multiferroic memories”. En: Nature Materials 6.4 (2007), págs. 256-257. DOI:10.1038/nmat1868; D. Craik y R. Tebble. “Magnetic domains”. En: IOP Science 24.1 (1961), págs. 116-166. DOI:10.1088/0034-4885/24/1/304.; Pu Huang et al. “Recent advances in two-dimensional ferromagnetism: Materials synthesis, physical properties and device applications”. En: Nanoscale 12.4 (2020), págs. 2309-2327. DOI:10.1039/c9nr08890c.; S. Mallik et al. “Transition metal subtituted MoS2/WS2 van der Waals heterostructure for realization of dilute magnetic semiconductors”. En: Journal of Magnetism and Magnetic Materials 560 (2022). ISSN: 0304-8853.; M. Olenchuk et al. “Magnetic Properties of MoS2 and WS2 Powders”. En: Nanotechnology (ELNANO) (2022), págs. 91-94. DOI:10.1109/ELNANO54667. 2022.9927028.; J. Zhang et al. “Magnetic Molybdenum Disulfide Nanosheet Films”. En: Nano Letters 7.8 (jul. de 2007), págs. 2370-2376. DOI:10.1021/nl071016r. URL: https://doi.org/10.1021%2Fnl071016r.; X. Mao et al. “Ferromagnetism in exfoliated tungsten disulfide nanosheets”. En: Nanoscale Research Letters 8.1 (oct. de 2013). DOI:10.1186/1556-276x-8-430. URL: https://doi.org/10.1186%2F1556-276x-8-430.; X. Liu et al. “High Performance Field-Effect Transistor Based on Multilayer Tungsten Disulfide”. En: ACS Nano 8.10 (oct. de 2014), págs. 10396-10402. DOI:10.1021/nn505253p. URL: https://doi.org/10.1021%2Fnn505253p.; A. Rossi et al. “Patterned tungsten disulfide/graphene heterostructures for efficient multifunctional optoelectronic devices”. En: Nanoscale 10.9 (2018), págs. 4332-4338. DOI:10.1039/c7nr08703a. URL: https://doi.org/10.1039%2Fc7nr08703a.; B. Radisavljevic et al. “Single-layer MoS2 transistors”. En: Nature Nanotechnology 6.3 (ene. de 2011), págs. 147-150. DOI:10.1038/nnano.2010.279. URL: https://doi.org/10.1038%2Fnnano.2010.279.; O. Abdelsalam et al. “Magnetic and Electronic Properties of Edge-Modified Triangular WS2 and MoS2 Quantum Dots”. En: Crystals 13 (2023), pág. 251. DOI:10.3390/cryst13020251.; Avinash P. Nayak et al. “Pressure-Dependent Optical and Vibrational Properties of Monolayer Molybdenum Disulfide”. En: Nano Letters 15.1 (dic. de 2014), págs. 346-353. DOI:10.1021/nl5036397. URL: https://doi.org/10.1021%2Fnl5036397.; J. Luxa et al. “Origin of exotic ferromagnetic behavior in exfoliated layered transition metal dichalcogenides MoS2 and WS2”. En: Nanoscale 8.4 (2016), págs. 1960-1967. DOI:10.1039/C5NR05757D.; B. Kirupakar et al. “Vibrating Sample Magnetometer and Its Application In Characterisation Of Magnetic Property Of The Anti Cancer Drug Magnetic Microspheres”. En: INTERNATIONAL JOURNAL OF PHARMACEUTICS DRUG ANALYSIS 4.5 (2016), págs. 227-233. DOI: https://doi.org/10.1016/j.ijpharm.2010.10.011.; S Medeiros et al. “Stimuli-responsive magnetic particles for biomedical applications”. En: International Journal of Pharmaceutics 403.1,2 (2011), págs. 139-161. DOI: https://doi.org/10.1016/j.ijpharm.2010.10.011.; J. Leach. “Magnetic Targeted Drug Delivery”. Thesis. Faculty of the Virginia Polytechnic Institute y State University, feb. de 2003.; M. Abd Mutalib et al. “Scanning Electron Microscopy (SEM) and Energy-Dispersive X-Ray (EDX) Spectroscopy”. En: ScienceDirect (2017), págs. 161-179. DOI:10.1016/b978-0-444-63776-5.00009-7.; J. Goldstein et al. “Scanning electron microscopy and X-ray microanalysis”. En: Springer Science+Business Media 1.3 (2003), págs. 565-570. DOI:10.1088/0034-4885/24/1/304.; https://hdl.handle.net/1992/73653; instname:Universidad de los Andes; reponame:Repositorio Institucional Séneca; repourl:https://repositorio.uniandes.edu.co/

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    المساهمون: Osorio Calvopiña, Henrry Marcelo

    Relation: Guerrero Sampedro, J.F. (2024). Síntesis y caracterización de puntos cuánticos de grafeno : obtención de GQDs mediante síntesis hidroterma. 47 páginas. Quito : EPN.; T-FCF 0256/CD 14061; http://bibdigital.epn.edu.ec/handle/15000/25555

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    Academic Journal
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    Academic Journal
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    Academic Journal

    المساهمون: Universidad de Alcalá. Departamento de Química Analítica, Química Física e Ingeniería Química, Unidad docente Química Analítica e Ingeniería Quimica

    وصف الملف: application/pdf

    Relation: info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/PGC2018-093375-B-I00/ES/Funcionalización de grafeno y sus derivados con biotensioactivos y compuestos bioactivos como nueva herramienta para la determinación de compuestos de interés biológico; http://hdl.handle.net/10017/49675; AR/0000032198; Nanomaterials; 10; 257; 239

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    Academic Journal
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    Academic Journal
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    Academic Journal
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