Laboratoire des Sciences des Matériaux, Mathématiques et Environnement, Université Sultan Moulay Slimane, Faculté Polydisciplinaire de Khouribga, B.P 145, 25000, Khouribga, Morocco.
Department of Applied Science and Technology, Politecnico di Torino, C.so Duca degli Abruzzi 24, 10129, Turin, Italy.
Environ Sci Pollut Res Int. 2023 Jul;30(34):81619-81634. doi: 10.1007/s11356-022-21838-y. Epub 2022 Jul 14.
Herein, we report on the preparation of novel colloidal system based on carboxymethyl cellulose (CMC) and Pd nanoparticles (CMC@Pd NPs) via an ecofriendly auto-reduction process under mild conditions. In the first step, the follow-up of reduction and preparation of CMC anchored palladium nanoparticles (Pd NPs) in aqueous solution was carried out using UV-Vis spectroscopy. Thereafter, the monodispersed colloids were fully characterized by advanced analytical, structural, and morphological techniques. Based on Scherrer equation, the as-synthesized CMC@Pd NPs crystallite size was about 10.88 nm. Accordingly, the detailed microscopic study revealed CMC nanocolloids anchored uniform distribution of Pd NPs and the presence of CMC nanofilm as protective monolayer. To the best of our knowledge, the observed nanoscale properties are reported for the first time for CMC-M system. The performance of the as-synthesized CMC@Pd nanocolloids was first investigated in the reduction of 4-nitrophenol, as a model substrate, to 4-aminophenol using NaBH as a hydrogen source. Moreover, the catalytic reduction of various nitroarenes bearing electron withdrawing or donating substituents was carried out and monitored by UV-Vis spectroscopy. The chemo- and regioselectivity of the catalytic reduction in presence of CMC@Pd NPs were also studied. Consequently, the prepared CMC@Pd nanocolloids exhibit remarkable activity, good heterogeneity, and higher reusability and stability for the catalytic reduction reaction under mild conditions.
在此,我们报告了一种新型胶体体系的制备,该体系基于羧甲基纤维素(CMC)和钯纳米粒子(CMC@Pd NPs),通过在温和条件下的环保自动还原过程。在第一步中,使用紫外-可见光谱法跟踪还原和制备水溶液中锚定的 CMC 钯纳米粒子(Pd NPs)。此后,通过先进的分析、结构和形态学技术对单分散胶体进行了充分的表征。根据谢乐方程,所合成的 CMC@Pd NPs 的晶粒度约为 10.88nm。因此,详细的微观研究表明 CMC 纳米胶体锚定了 Pd NPs 的均匀分布,并且存在 CMC 纳米膜作为保护单层。据我们所知,首次报道了观察到的 CMC-M 体系的纳米级性质。首先研究了合成的 CMC@Pd 纳米胶体在以 NaBH 为氢源将 4-硝基苯酚还原为 4-氨基酚作为模型底物中的性能。此外,还通过紫外-可见光谱法监测了各种带有吸电子或供电子取代基的硝基芳烃的催化还原。还研究了 CMC@Pd NPs 存在下催化还原的化学和区域选择性。因此,所制备的 CMC@Pd 纳米胶体在温和条件下的催化还原反应中表现出显著的活性、良好的非均相性、更高的可重复使用性和稳定性。