Sandip Kundu, Mandira Mitra, Priya Karmakar, Sk Mehebub Rahaman, Mousumi Layek, Pintu Sar and Bidyut Saha
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引用次数: 0
摘要
本研究探讨了在十六烷基三甲基溴化铵(CTAB)胶束介质中,双胍酸酯(III) (DPA)配合物催化氧化同系醇(2-丙醇、2-丁醇和2-戊醇)。值得注意的是,胶束介质的使用避免了对有机溶剂的需求,符合绿色可持续化学原则。用紫外-可见光谱法监测反应动力学,在360 nm处跟踪Ag(III)还原为Ag(I)。对于所有三种醇,在5 mM CTAB浓度下观察到最大速率增强。Zeta电位测量结果支持了胶束介质中反应速率的显著提高。NMR, DLS和UV-vis研究揭示了CTAB和DPA之间的相互作用。在紫外-可见研究中,在CTAB - dpa系统中,CTAB浓度为0.8-2 mM的区域观察到色移。测定了DPA存在下CTAB的临界胶束浓度(CMC),证明了DPA对胶束形成的影响。该绿色催化体系在醇氧化反应中表现出良好的效率和可持续性,在有机合成和工业过程中具有潜在的应用前景。
Unveiling the sustainable oxidation approach of homologous alcohols by DPA in a CTAB micellar environment†
This study explores the catalytic oxidation of homologous alcohols (2-propanol, 2-butanol, and 2-pentanol) by the diperiodatoargentate(III) (DPA) complex in a cetyltrimethylammonium bromide (CTAB) micellar medium. Notably, the use of a micellar medium avoided the need for organic solvents, aligning with green sustainable chemistry principles. The reaction kinetics were monitored by UV-vis spectroscopy, tracking the reduction of Ag(III) to Ag(I) at 360 nm. For all three alcohols, the maximum rate augmentation is observed at a 5 mM CTAB concentration. Zeta potential measurements supported the significant enhancement in reaction rate of the studied reactions in a micellar medium. NMR, DLS, and UV-vis studies revealed interactions between CTAB and DPA. A bathochromic shift is observed in the UV-vis study in the region of 0.8–2 mM CTAB concentrations in the CTAB–DPA system. The critical micelle concentration (CMC) of CTAB was evaluated in the presence of DPA, demonstrating its impact on micelle formation. This green catalytic system demonstrates promising efficiency and sustainability for alcohol oxidation reactions, with potential applications in organic synthesis and industrial processes.