Academic literature on the topic 'Magnetic nanocatalyst'

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Journal articles on the topic "Magnetic nanocatalyst"

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Ji, Fengtong, Ben Wang, and Li Zhang. "Light-Triggered Catalytic Performance Enhancement Using Magnetic Nanomotor Ensembles." Research 2020 (July 8, 2020): 1–11. http://dx.doi.org/10.34133/2020/6380794.

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Micro/nanomachines have attracted extensive attention in the biomedical and environmental fields for realizing functionalities at small scales. However, they have been rarely investigated as active nanocatalysts. Heterogeneous nanocatalysts have exceptional reusability and recyclability, and integration with magnetic materials enables their recovery with minimum loss. Herein, we propose a model active nanocatalyst using magnetic nanomotor ensembles (MNEs) that can degrade contaminants in an aqueous solution with high catalytic performance. MNEs composed of a magnetite core coated with gold nan
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Corchero, Raquel, Rosario Rodil, Ana Soto, and Eva Rodil. "Nanomaterial Synthesis in Ionic Liquids and Their Use on the Photocatalytic Degradation of Emerging Pollutants." Nanomaterials 11, no. 2 (2021): 411. http://dx.doi.org/10.3390/nano11020411.

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The unique properties of ionic liquids make them suitable candidates to prepare nanoscale materials. A simple method that uses exclusively a corresponding bulk material and an ionic liquid—in this case, [P6,6,6,14]Cl—was used to prepare AgCl nanoparticles and AgCl@Fe3O4 or TiO2@Fe3O4 magnetic nanocomposites. The prepared nanomaterials were characterized by X-ray powder diffraction, scanning electron microscopy, transmission electron microscopy, ultraviolet–visible spectroscopy, and X-ray photoelectron spectroscopy. The photodegradation of atenolol as a model pharmaceutical pollutant in wastewa
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Ghamari kargar, Pouya, and Ghodsieh Bagherzade. "The anchoring of a Cu(ii)–salophen complex on magnetic mesoporous cellulose nanofibers: green synthesis and an investigation of its catalytic role in tetrazole reactions through a facile one-pot route." RSC Advances 11, no. 31 (2021): 19203–20. http://dx.doi.org/10.1039/d1ra01913a.

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Due to the importance and widespread applications of tetrazoles, especially in pharmaceutical chemistry, and the expansion of the use of nanocatalysts in the preparation of valuable chemical reaction products, we decided to use a (Fe<sub>3</sub>O<sub>4</sub>@NFC@NSalophCu)CO<sub>2</sub>H nanocatalyst.
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Gyergyek, Sašo, Darja Lisjak, Miloš Beković, et al. "Magnetic Heating of Nanoparticles Applied in the Synthesis of a Magnetically Recyclable Hydrogenation Nanocatalyst." Nanomaterials 10, no. 6 (2020): 1142. http://dx.doi.org/10.3390/nano10061142.

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Utilization of magnetic nanoparticle-mediated conversion of electromagnetic energy into heat is gaining attention in catalysis as a source of heat needed for a substrate’s chemical reaction (electrification of chemical conversions). We demonstrate that rapid and selective heating of magnetic nanoparticles opens a way to the rapid synthesis of a nanocatalyst. Magnetic heating caused rapid reduction of Ru3+ cations in the vicinity of the support material and enabled preparation of a Ru nanoparticle-bearing nanocatalyst. Comparative synthesis conducted under conventional heating revealed signific
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Tabari, Sonia, Ali Reza Pourali, and Ehsan Nazarzadeh Zare. "Magnetic Nanoparticles Linked to Pyridinium Hydrotribromide Groups as Catalysts for Selective Oxidation of Alcohols and Protection of Alcohols." Acta Chimica Slovenica 69, no. 2 (2022): 271–80. http://dx.doi.org/10.17344/acsi.2021.6761.

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In this research, a novel magnetic nanocatalyst based on iron oxide nanoparticles linked with pyridinium hydrotribromide (Fe3O4@PyHBr3) was synthesized in three steps. In the first step, 3-(aminopropyl)triethoxysilane (APTES) was reacted with 4-(bromomethyl)pyridine hydrobromide. In the second step, the product obtained in the first step was reacted with iron oxide nanoparticles. In the last step, a grinding reaction was carried out with KBr and HIO4 in a mortar. The Fe3O4@PyHBr3 nanocatalyst was characterized by FT-IR, CHN, XRD, SEM, TGA and VSM analysis. The magnetic nanocatalyst was used as
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Zarei, Mahshid, and Hossein Naeimi. "Design, preparation and characterization of magnetic nanoparticles functionalized with chitosan/Schiff base and their use as a reusable nanocatalyst for the green synthesis of 1H-isochromenes under mild conditions." RSC Advances 14, no. 2 (2024): 1407–16. http://dx.doi.org/10.1039/d3ra06416f.

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In this research, a Schiff base complex magnetic nanocatalyst was designed and prepared. The structure of Fe3O4@CS-SB-CaMgFe2O4 nanocatalyst was characterized using FT-IR, XRD, VSM, FE-SEM, EDX, Mapp scanning, BET, and TGA techniques.
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Jiang, Shenghao, Macheng Shen, and Fatima Rashid Sheykhahmad. "Fe3O4@urea/HITh-SO3H as an efficient and reusable catalyst for the solvent-free synthesis of 7-aryl-8H-benzo[h]indeno[1,2-b]quinoline-8-one and indeno[2′,1′:5,6]pyrido[2,3-d]pyrimidine derivatives." Open Chemistry 18, no. 1 (2020): 648–62. http://dx.doi.org/10.1515/chem-2020-0063.

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AbstractIn this study, Fe3O4@urea/HITh-SO3H MNPs as a new, efficient, and recyclable solid acid magnetic nanocatalyst was synthesized and characterized using various methods including Fourier transform infrared spectroscopy, thermogravimetric analysis, scanning electron microscopy, transmission electron microscopy, vibrating sample magnetometry, energy-dispersive X-ray spectroscopy, and X-ray powder diffraction. After the characterization of this new magnetic nanocatalyst, it was efficiently utilized for the promotion of the one-pot synthesis of 7-aryl-8H-benzo[h]indeno[1,2-b]quinoline-8-one a
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Binandeh, Mansour, Mohammad Ali Nasseri, and Ali Allahresani. "Organization of A3-coupling compounds by magnetic nanocomposite bimetallic in green conditions." PLOS ONE 20, no. 2 (2025): e0312758. https://doi.org/10.1371/journal.pone.0312758.

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The current project reports two chemical reactions of A3 coupling and creation of three reactans simultaneously and in domino form by bimetallic magnetic nanocatalyst (cobalt/manganese). This bimetallic nanocatalyst was heterogeneously synthesized by a simple chemical co-precipitation method and identified and analyzed by FE-SEM, TEM, VSM, ICP, BET, FT-IR, EDX, etc. analyses. The experimental results showed that the structure of the nanocatalyst is very regular and flexible, and its surface has spaces in nanometer sizes to carry out these chemical reactions. The efficiency and power of the nan
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El-Monaem, Eman M. Abd, Mona M. Abd El-Latif, Abdelazeem S. Eltaweil, and Gehan M. El-Subruiti. "Cobalt Nanoparticles Supported on Reduced Amine-Functionalized Graphene Oxide for Catalytic Reduction of Nitroanilines and Organic Dyes." Nano 16, no. 04 (2021): 2150039. http://dx.doi.org/10.1142/s1793292021500399.

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In our study, a simple strategy to fabricate an efficient cobalt-based nanocatalyst is reported. The as-fabricated cobalt nanoparticles (Co NPs) that supported on reduced amine-functionalized graphene oxide (Co@RGO-NH[Formula: see text] have been fabricated through reduction of Co[Formula: see text] and GO-NH2 by sodium borohydride under mild conditions. The morphology, elemental analysis, chemical composition, surface area and magnetic property of the as-fabricated Co@RGO-NH2 nanocatalyst have been investigated using scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (ED
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Demirelli, M., E. Karaoğlu, A. Baykal, H. Sözeri, E. Uysal, and O. Duygulu. "Recyclable NiFe2O4–APTES/Pd Magnetic Nanocatalyst." Journal of Inorganic and Organometallic Polymers and Materials 23, no. 4 (2013): 937–43. http://dx.doi.org/10.1007/s10904-013-9870-5.

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Dissertations / Theses on the topic "Magnetic nanocatalyst"

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Williams, Anna Rose. "Biogenic precious metal-based magnetic nanocatalyst for enhanced oxygen reduction." Thesis, University of Birmingham, 2016. http://etheses.bham.ac.uk//id/eprint/6666/.

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This work contributes to the development of electrocatalysts for use in polymer electrolyte fuel cells, specifically for the cathodic oxygen reduction reaction (ORR). To achieve this, electrochemical analysis was conducted using biofabricated platinum (bio-Pt) catalyst. Bio-Pt per se was found to be a poor catalyst for the ORR, attributed to the platinum being inaccessible to the reactants. Various ‘cleaning’ techniques were tested to partially remove biomass, providing improved catalytic activity.
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Oliveira, Rafael de Lima. "Nanocatalisadores de ouro: preparação, caracterização e desempenho catalítico." Universidade de São Paulo, 2009. http://www.teses.usp.br/teses/disponiveis/46/46134/tde-26042010-104333/.

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O ouro foi considerado um metal pouco interessante do ponto de vista catalítico por muito tempo, devido ao fato de não quimiossorver moléculas como hidrogênio e oxigênio. Entretanto, suas propriedades catalíticas são reveladas quando suas dimensões são reduzidas a poucos nanômetros, particularmente menores do que 10 nm. Assim, nanocatalisadores de ouro vêm recebendo atenção devido as suas excelentes propriedades catalíticas e alta seletividade em reações de oxidação e redução. O presente trabalho descreve a síntese e caracterização de nanopartículas de ouro suportadas e sua aplicação em reaçõe
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Vono, Lucas Lucchiari Ribeiro. "Design of nanocatalysts supported on magnetic nanocomposites containing silica, ceria and titania." Universidade de São Paulo, 2016. http://www.teses.usp.br/teses/disponiveis/46/46136/tde-17082016-082602/.

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Magnetic separation has received a lot of attention as a robust, highly efficient and rapid catalyst separation technology. Many studies have focused on developing methodologies for the immobilization of catalytic active species, but the development of magnetic supports has been mainly limited to silica, polymer or carbon-coated magnetic nanoparticles (NPs). The design of magnetic nanocomposites and the incorporation of other oxides are highly welcome to broaden the application of this separation technology in the field of catalysis. In this context, studies of the thermal stability of silica-
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Bertolucci, Elisa. "Green Synthesis of magnetic nanostructures suitable as recoverable nanocatalysts and conductive nanomaterials." Doctoral thesis, Scuola Normale Superiore, 2016. http://hdl.handle.net/11384/86197.

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Liu, Yilin. "Magnetic nanocatalysts for oxidative decomposition of persistent organic pollutants (POPs) in contaminated water." Thesis, Curtin University, 2015. http://hdl.handle.net/20.500.11937/920.

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The thesis reports the synthesis of magnetic Mn-based nanocatalysts by different hydrothermal methods and their application in the oxidative reaction of aqueous phenol solutions for wastewater treatment. It was found that all the catalysts present high activity in peroxymonosulfate (PMS, Oxone) activation for the decomposition of phenol and good magnetic performance in separation. This research makes good contributions to materials synthesis and catalytic oxidation of organic pollutants in water.
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Chan, Chun Wong Aaron. "Ultraselective nanocatalysts in fine chemical and pharmaceutical synthesis." Thesis, University of Oxford, 2012. http://ora.ox.ac.uk/objects/uuid:866296af-5296-4d2e-8e52-6499dacaef0f.

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Surface catalysed reactions play an important role in chemical productions. Developments of catalyst requiring high activity whilst improving on product selectivity can potentially have a profound effect in the chemical industry. Traditional catalyst modifications were focused on tuning the size, shape and foreign metal doping to form well defined metal nanoparticles of unique functionalities. Here, we show new approach to engineering of metal nanocatalysts via a subsurface approach can modify the chemisorption strength of adsorbates on the surface. Carbon modified nanoparticles were synthesis
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Pérez, Galera Juana María. "Impregnated Cobalt, Nickel, Copper and Palladium Oxides on Magnetite: Nanocatalysts for Organic Synthesis." Doctoral thesis, Universidad de Alicante, 2016. http://hdl.handle.net/10045/57586.

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In this manuscript, the application of different nanocatalysts derived from metal oxides impregnated on the surface of the magnetite in different reaction of general interest in Organic Chemistry is described. In the First Chapter, a cobalt derived catalyst was used to study the hydroacylation reaction of azodicarboxylates with aldehydes. In the Second Chapter, a catalyst derived from copper was used to perform different reactions, including homocoupling of terminal alkynes and the subsequent hydration reaction to obtain the corresponding 2,5-disubstituted benzofurans, the reaction of alcohols
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Duanmu, Chuansong. "EXPANDING APPLICATIONS OF IRON OXIDE NANOPARTICLES BY SURFACE FUCNTIONALIZATION: FROM MAGNETIC RESONANCE IMAGING TO NANO-CATALYSIS." OpenSIUC, 2009. https://opensiuc.lib.siu.edu/dissertations/110.

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In this dissertation, research efforts mainly focused on exploring the applications of superparamagnetic iron oxide nanoparticles (SPIONs) in MR imaging and nanocatalysis via surface functionalization. A dopamine-based surface-functionalization strategy was established. The Simanek dendrons (G1 to G3), oligonucleotides and amino acids were loaded onto SPION surfaces via this approach to develop pH-sensitive MRI contrast agents, specific-DNA MR probes and a biomimetic hydrolysis catalyst. Dendron-SPION conjugates (G1 to G3) have good aqueous solubilities and high transverse relaxivities (>300
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Wang, Jiawei. "Nanocatalysts for sustainable industrial processses." Master's thesis, 2015. http://hdl.handle.net/10400.13/1124.

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In Chapter 1, rhodium nanoparticles were supported on multiwalled carbon nanotubes (MWCNTs) and bound to the magnetic core-shell system Fe3O4@TiO2. The composite Fe3O4@TiO2-Rh-MWCNT and the intermediates were characterized by SEM, EDS and TEM. Their catalytic activity was studied using i) the hydrogenation transfer of nitroarenes and cyclohexene in the presence of hydrazine hydrate; ii) the reduction of 2-nitrophenol with NaBH4; and iii) the decoloration of pigments in the presence of hydrogen peroxide. The results were monitored by gas chromatography (i) and UV Visible (ii and i
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Books on the topic "Magnetic nanocatalyst"

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Varma, Rajender S., and Bubun Banerjee. Magnetic Nanocatalysis: Synthetic Applications. de Gruyter GmbH, Walter, 2022.

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Varma, Rajender S., and Bubun Banerjee. Magnetic Nanocatalysis: Industrial Applications. de Gruyter GmbH, Walter, 2022.

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Varma, Rajender S., and Bubun Banerjee. Magnetic Nanocatalysis: Synthetic Applications. de Gruyter GmbH, Walter, 2022.

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Varma, Rajender S., and Bubun Banerjee. Magnetic Nanocatalysis: Synthetic Applications. de Gruyter GmbH, Walter, 2022.

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Varma, Rajender S., and Bubun Banerjee. Magnetic Nanocatalysis: Industrial Applications. de Gruyter GmbH, Walter, 2022.

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Varma, Rajender S., and Bubun Banerjee. Magnetic Nanocatalysis: Industrial Applications. de Gruyter GmbH, Walter, 2022.

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Varma, Rajender S., and Bubun Banerjee. [Set Magnetic Nanocatalysis, Volume 1+2]. de Gruyter GmbH, Walter, 2022.

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Pennycook, S. J., M. Varela, M. F. Chisholm, et al. Scanning transmission electron microscopy of nanostructures. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.6.

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This article investigates nanostructures by means of scanning transmission electron microscopy. The electron microscope is uniquely suited to the study of individual nanostructures, allowing differentiation of different structures and properties that is difficult or impossible to do with techniques that provide a spatial average. The present generation of aberration correctors, which correct all aberrations up to third order, makes it possible to obtain sufficient sensitivity to image and spectroscopically analyze single atoms. This article begins with a brief overview of the correction of len
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Book chapters on the topic "Magnetic nanocatalyst"

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Zhang, Peina, Tao Liu, Xinyuan He, Shengnan Wang, Hao Kong, and Mingfei Li. "Synthesis of magnetic Pt/Fe3O4 nanomaterials as excellent nanocatalyst for ultrafast recyclable reduction of 4-nitrophenol." In Advances in Civil Engineering and Environmental Engineering, Volume 2. CRC Press, 2023. http://dx.doi.org/10.1201/9781003383031-77.

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Perera, Ayomi S. "CHAPTER 4. Sustainable Magnetic Nanocatalysts in Heterogeneous Catalysis." In Magnetic Nanomaterials. Royal Society of Chemistry, 2017. http://dx.doi.org/10.1039/9781788010375-00099.

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Ahmed, Javeria, Muhammad Sajjad, Hafiz Abdullah Shakir, Muhammad Khan, Marcelo Franco, and Muhammad Irfan. "Magnetic Nanocatalysts for Biofuel Production." In Clean Energy Production Technologies. Springer Nature Singapore, 2024. http://dx.doi.org/10.1007/978-981-97-1623-4_7.

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Bagheri, Samira, and Nurhidayatullaili Muhd Julkapli. "Easy Separation of Magnetic Photocatalyst from Aqueous Pollutants." In Nanocatalysts in Environmental Applications. Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-69557-0_5.

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Mapossa, António B., and Michael Daramola. "Magnetic Nanomaterials and Their Relevance in Transesterification Reactions." In Advanced Nanocatalysts for Biodiesel Production. CRC Press, 2022. http://dx.doi.org/10.1201/9781003120858-6.

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Lin, Fang-hsin, and Ruey-an Doong. "Magnetically Recyclable Gold−Magnetite Nanocatalysts for Reduction of Nitrophenols." In ACS Symposium Series. American Chemical Society, 2013. http://dx.doi.org/10.1021/bk-2013-1124.ch016.

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Taheri-Ledari, Reza, and Ali Maleki. "Magnetic hybrid nanocatalysts." In Magnetic Nanoparticle-Based Hybrid Materials. Elsevier, 2021. http://dx.doi.org/10.1016/b978-0-12-823688-8.00007-7.

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Dandia, Anshu, Sonam Parihar, Krishan Kumar, Surendra Saini, and Vijay Parewa. "Chapter 5 Combination of green chemistry and magnetic nanocatalyst: a sustainable approach for the synthesis of value-added materials." In Industrial Applications. De Gruyter, 2022. http://dx.doi.org/10.1515/9783110782165-005.

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D. Kadam, Mr Avdhut, and Dr Santosh B. Kamble. "RECENT ADVANCE ROLE OF Fe3O4-SUPORTED NANOCATALYSTS IN VARIOUS ORGANIC TRANSFORMATIONS." In Futuristic Trends in Chemical Material Sciences & Nano Technology Volume 3 Book 3. Iterative International Publishers, Selfypage Developers Pvt Ltd, 2024. http://dx.doi.org/10.58532/v3becm3ch9.

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The importance of magnetic nanoparticles as to provide the large surface area during catalytic reaction. It show dynamic change in catalyst activity when a solid support material which have magnetic property. Such type of solids called quashi-homogeneous catalyst easy extraction and removal from reaction mixture using an external magnet and such catalyst can be reused. They show environmentally benign green catalytic process. For synthesis of magnetically isolable nanoparticles has been different methods such as i) Wet chemical, ii) Templet directed, iii) Micro emulsion, iv) Thermal decomposit
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Bhardwaj, Priya, and Maruthi Mulaka. "Magnetic recyclable nanocatalysts for cancer treatment." In Oxides for Medical Applications. Elsevier, 2023. http://dx.doi.org/10.1016/b978-0-323-90538-1.00005-4.

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Conference papers on the topic "Magnetic nanocatalyst"

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Uberman, Paula M., Natalia J. S. Costa, Joao L. P. Albuquerque, Alcindo A. Dos Santos, and Liane M. Rossi. "Selective semi-hydrogenation of propargylamines using palladium magnetic nanocatalyst." In 15th Brazilian Meeting on Organic Synthesis. Editora Edgard Blücher, 2013. http://dx.doi.org/10.5151/chempro-15bmos-bmos2013_201310419485.

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Maleki, Ali, and Zoleikha Hajizadeh. "Magnetic halloysite: an envirmental nanocatalyst for the synthesis of benzoimidazoles." In The 21st International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2017. http://dx.doi.org/10.3390/ecsoc-21-04726.

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Maleki, Ali, Razieh Firouzi Haji, and Mina Ghassemi. "Application of chitosan-based magnetic organic-inorganic hybrid nanocatalyst for the multicomponent synthesis of." In The 20th International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2016. http://dx.doi.org/10.3390/ecsoc-20-a040.

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Maleki, Ali, and Razieh Firouzi Haji. "L-Proline-functionalized magnetic nanocomposite: a green magnetic nanocatalyst for efficient synthesis of imidazo[1,2-a]pyridines." In The 21st International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2017. http://dx.doi.org/10.3390/ecsoc-21-04720.

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Maleki, Ali, Negar Hamidi, and Saied Maleki. "Magnetic Hybrid Iron Oxide-Based Composite Nanocatalyst for the Synthesis of Polyhydroquinolines U Solvent-Free Conditions at Room Temperature." In 1st International Electronic Conference on Materials. MDPI, 2014. http://dx.doi.org/10.3390/ecm-1-b005.

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Taufik, Ardiansyah, and Rosari Saleh. "Comparison of catalytic activities for photocatalytic and sonocatalytic degradation of organic dye in the presence of ternary Fe3O4/ZnO/CuO magnetic heteregenous nanocatalyst." In THE 3RD INTERNATIONAL CONFERENCE ON ADVANCED MATERIALS SCIENCE AND TECHNOLOGY (ICAMST 2015). Author(s), 2016. http://dx.doi.org/10.1063/1.4945542.

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Sam, Mahsa, and Mohammad Dekamin. "A novel and efficient magnetic nanocatalyst functionalized with 1,3,5-tris(2-hydroxyethyl)isocyanurate and boric acid for the synthesis of symmetric and asymmetric Hantzsch esters." In The 23rd International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2019. http://dx.doi.org/10.3390/ecsoc-23-06516.

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Maleki, Ali, Parisa Ravaghi, Morteza Aghaie, and Hamed Movahed. "A highly active polymeric magnetic nanocatalyst for the preparation of 3-carboxycoumarins derivatives under mild conditions." In The 20th International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2016. http://dx.doi.org/10.3390/ecsoc-20-a033.

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Razak, Jeefferie Abd, Suriati Sufian, Ku Zilati Ku Shaari, Poppy Puspitasari, Tshai Kim Hoe, and Noorhana Yahya. "Synthesis, characterization and application of Y[sub 3]Fe[sub 5]O[sub 12] nanocatalyst for green production of NH[sub 3] using magnetic induction method (MIM)." In INTERNATIONAL CONFERENCE ON FUNDAMENTAL AND APPLIED SCIENCES 2012: (ICFAS2012). AIP, 2012. http://dx.doi.org/10.1063/1.4757548.

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Maleki, Ali, and Sepide Azadegan. "Preparation and characterization of silica-supported magnetic nanocatalyst and application in the synthesis of 2-amino-4H-chromene-4-carboxylate and 2-amino-5H-pyrano[3,2-c]chromene-4-carboxylate derivatives." In The 19th International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2015. http://dx.doi.org/10.3390/ecsoc-19-a017.

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