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Articles

Comparative investigation of the catalytic application of α/β/γ-MnO2 nanoparticles synthesized by green and chemical approaches

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Pages 1081-1091 | Received 20 Jun 2022, Accepted 30 Sep 2022, Published online: 26 Oct 2022

References

  • Modena MM, Rühle B, Burg TP, et al. Nanoparticle characterization: what to measure? Adv Mater. 2019;31:1901556.
  • Liu X, Yi J, Wu K, et al. Rechargeable Zn–MnO2 batteries: advances, challenges and perspectives. Nanotechnology. 2020;31:122001.
  • Lyu C, Yang X, Zhang S, et al. Preparation and performance of manganese-oxide-coated zeolite for the removal of manganese-contamination in groundwater. Environ Technol. 2019;40:878–887.
  • Ghosh SK. Diversity in the family of manganese oxides at the nanoscale: from fundamentals to applications. ACS Omega. 2020;5:25493–25504.
  • Jung K-W, Lee SY, Lee YJ, et al. Ultrasound-assisted heterogeneous Fenton-like process for bisphenol A removal at neutral pH using hierarchically structured manganese dioxide/biochar nanocomposites as catalysts. Ultrason Sonochem. 2019;57:22–28.
  • Bhandare SV, Kumar R, Anupama A, et al. Mechanistic insights into the sol-gel synthesis of complex (quaternary) Co–Mn–Zn-spinel ferrites: an annealing dependent study. Ceram Int. 2020;46:17400–17415.
  • Javed R, Zia M, Naz S, et al. Role of capping agents in the application of nanoparticles in biomedicine and environmental remediation: recent trends and future prospects. J Nanobiotechnol. 2020;18:1–15.
  • Vinayagam R, Zhou C, Pai S, et al. Structural characterization of green synthesized magnetic mesoporous Fe3O4NPs@ME. Mater Chem Phys. 2021;262:124323.
  • Varadavenkatesan T, Pai S, Vinayagam R, et al. Characterization of silver nano-spheres synthesized using the extract of Arachis hypogaea nuts and their catalytic potential to degrade dyes. Mater Chem Phys. 2021;272:125017.
  • Selvaraj R, Pai S, Murugesan G, et al. Green synthesis of magnetic α–Fe2O3 nanospheres using Bridelia retusa leaf extract for Fenton-like degradation of crystal violet dye. Appl Nanosci. 2021;11:2227–2234.
  • Sajjadi M, Baran NY, Baran T, et al. Palladium nanoparticles stabilized on a novel Schiff base modified Unye bentonite: highly stable, reusable and efficient nanocatalyst for treating wastewater contaminants and inactivating pathogenic microbes. Sep Purif Technol. 2020;237; doi:10.1016/j.seppur.2019.116383.
  • Fabrizioli P, Buergi T, Baiker A. Manganese oxide–silica aerogels: synthesis and structural and catalytic properties in the selective oxidation of NH3. J Catalysis. 2002;207:88–100.
  • Naseer M, Aslam U, Khalid B, et al. Green route to synthesize Zinc Oxide Nanoparticles using leaf extracts of Cassia fistula and Melia azadarach and their antibacterial potential. Sci Rep. 2020;10:1–10.
  • Luque P, Chinchillas-Chinchillas M, Nava O, et al. Green synthesis of tin dioxide nanoparticles using Camellia sinensis and its application in photocatalytic degradation of textile dyes. Optik. 2021;229:166259.
  • Nair GM, Sajini T, Mathew B. Advanced green approaches for metal and metal oxide nanoparticles synthesis and their environmental applications. Talanta Open. 2022;5. https://doi.org/10.1016/j.talo.2021.100080
  • Singh P, Kim YJ, Wang C, et al. The development of a green approach for the biosynthesis of silver and gold nanoparticles by using Panax ginseng root extract, and their biological applications. Artif Cells Nanome Biotechnol. 2016;44:1150–1157.
  • Vidovix TB, Quesada HB, Bergamasco R, et al. Adsorption of safranin-O dye by copper oxide nanoparticles synthesized from Punica granatum leaf extract. Environ Technol. 2022;43:3047–3063.
  • Hoseinpour V, Ghaemi N. Green synthesis of manganese nanoparticles: applications and future perspective–A review. J Photochem Photobiol B Biol. 2018;189:234–243.
  • Bourhia M, Bouothmany K, Bakrim H, et al. Chemical profiling, antioxidant, antiproliferative, and antibacterial potentials of chemically characterized extract of Citrullus colocynthis L. seeds. Separations. 2021;8:114.
  • Al-Ghaithi F, El-Ridi MR, Adeghate E, et al. Biochemical effects of Citrullus colocynthis in normal and diabetic rats. Mol Cell Biochem. 2004;261:143–149.
  • Milovanović M, Pićurić-Jovanović K. Characteristics and composition of melon seed oil. J Agric Sci (Belgr.). 2005;50:41–47.
  • Naghdi S, Sajjadi M, Nasrollahzadeh M, et al. Cuscuta reflexa leaf extract mediated green synthesis of the Cu nanoparticles on graphene oxide/manganese dioxide nanocomposite and its catalytic activity toward reduction of nitroarenes and organic dyes. J Taiwan Inst Chem Eng. 2018;86:158–173.
  • Baran T. Biosynthesis of highly retrievable magnetic palladium nanoparticles stabilized on bio-composite for production of various biaryl compounds and catalytic reduction of 4-nitrophenol. Catal Lett. 2019;149:1721–1729.
  • Shah Z, Gul T, Khan SA, et al. Synthesis of high surface area AgNPs from Dodonaea viscosa plant for the removal of pathogenic microbes and persistent organic pollutants. Mater Sci Eng B. 2021;263:114770.
  • da Silva AR, de Andrade Neto JB, da Silva CR, et al. Berberine antifungal activity in fluconazole-resistant pathogenic yeasts: action mechanism evaluated by flow cytometry and biofilm growth inhibition in Candida spp. Antimicrob Agents Chemother. 2016;60:3551–3557.
  • Shah JH, Fiaz M, Athar M, et al. Facile synthesis of N/B-double-doped Mn2O3 and WO3 nanoparticles for dye degradation under visible light. Environ Technol. 2020;41(18):2372–2381. https://doi.org/10.1080/09593330.2019.1567604
  • Pan W, Mao J, Wang Y, et al. High-performance MnO2/Al battery with In situ electrochemically reformed AlxMnO2Nanosphere cathode. Small Methods. 2021;5:2100491.
  • Bykov M, Bykova E, Chariton S, et al. Stabilization of pentazolate anions in the high-pressure compounds Na 2N5and NaN5and in the sodium pentazolate framework NaN5·N2. Dalton Trans. 2021;50:7229–7237.
  • Dessie Y, Tadesse S, Eswaramoorthy R. Physicochemical parameter influences and their optimization on the biosynthesis of MnO2 nanoparticles using Vernonia amygdalina leaf extract. Arab J Chem. 2020;13:6472–6492.
  • Dutta S, Ghosh TK, Mahapatra P, et al. Joining of trinuclear heterometallic CuII2–MII(M = Mn, Cd) nodes by nicotinate to form 1D chains: magnetic properties and catalytic activities. Inorg Chem. 2020;59:14989–15003.
  • Opatová K, Zetková I, Kučerová L. Relationship between the size and inner structure of particles of virgin and re-used MS1 maraging steel powder for additive manufacturing. Materials. 2020;13:956.
  • Papadopoulou A, Gillissen JJ, Wilson HJ, et al. On the shear thinning of non-Brownian suspensions: friction or adhesion? J Non-Newton Fluid Mech. 2020;281:104298.
  • Ha M, Kim J-H, You M, et al. Multicomponent plasmonic nanoparticles: from heterostructured nanoparticles to colloidal composite nanostructures. Chem Rev. 2019;119:12208–12278.
  • Mair P, Kaserer L, Braun J, et al. Microstructure and mechanical properties of a TiB2-modified Al–Cu alloy processed by laser powder-bed fusion. Mater Sci Eng A. 2021;799:140209.
  • Bahl S, Plotkowski A, Sisco K, et al. Elevated temperature ductility dip in an additively manufactured Al-Cu-Ce alloy. Acta Mater. 2021;220:117285.
  • Khan SR, Naeem A, Jamil S, et al. Synthesis of manganese–tin oxide microparticles by the solvothermal method and study of application as a catalyst and additive. Environ Technol. 2021;42:1187–1195.
  • Biswal HJ, Yadav A, Vundavilli PR, et al. High aspect ZnO nanorod growth over electrodeposited tubes for photocatalytic degradation of EtBr dye. RSC Adv. 2021;11:1623–1634.
  • Ehnert S, Seehase J, Müller-Renno C, et al. Simultaneous quantification of total carbohydrate and protein amounts from aqueous solutions by the sulfuric acid ultraviolet absorption method (SA-UV method). Anal Chim Acta. 2021;1174:338712.
  • Mukhtar I, Ali S, Jamil S, et al. Engineering of cobalt sulfide (Co5S2) microcubes for selective catalytic hydrogenation of nitroarenes and enhanced calorific value of fuel. Chem Phys Lett. 2020;754:137649.
  • Chen X, Geng K, Liu R, et al. Covalent organic frameworks: chemical approaches to designer structures and built-in functions. Ang Chem Int Ed. 2020;59:5050–5091.
  • Burdyny T, Smith WA. CO2 reduction on gas-diffusion electrodes and why catalytic performance must be assessed at commercially-relevant conditions. Energy Environ Sci. 2019;12:1442–1453.
  • Yu W, Jiang H, Fang J, et al. Designing an electron-deficient Pd/NiCo2O4 Bifunctional electrocatalyst with an enhanced hydrodechlorination activity to reduce the consumption of Pd. Environ Sci Technol. 2021;55:10087–10096.
  • Sousa RR, Silva A, Fernandez-Lafuente R, et al. Solvent-free esterifications mediated by immobilized lipases: a review from thermodynamic and kinetic perspectives. Catal Sci Technol. 2021;11:5696–5711.
  • Dawadi S, Gupta A, Khatri M, et al. Manganese dioxide nanoparticles: synthesis, application and challenges. Bulletin Mater Sci. 2020;43:1–10.
  • Moon SA, Salunke BK, Alkotaini B, et al. Biological synthesis of manganese dioxide nanoparticles by Kalopanax pictusplant extract. IET Nanobiotechnol. 2015;9:220–225.
  • Hoseinpour V, Souri M, Ghaemi N. Green synthesis, characterisation, and photocatalytic activity of manganese dioxide nanoparticles. Micro Nano Lett. 2018;13:1560–1563.

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