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Modified electrodes: Utilizing Cu‐modified graphene oxide nanosheets as a cathode in electro‐oxidation synthesis of mild Suzuki–Miyaura cross‐coupling reaction under green and sustainable conditions

Sherzod AbdullaevEngineering School Central Asian University Tashkent UzbekistanD. SinghDepartment of Chemistry, School of Chemical Sciences and Technology Dr. Harisingh Gour Vishwavidyalaya (A Central University) Sagar IndiaMohammed N. Al‐DelfiNational University of Science and Technology Dhi Qar IraqAbhinav KumarDepartment of Nuclear and Renewable Energy Ural Federal University Named After the First President of Russia Boris Yeltsin Ekaterinburg RussiaQusay Husam AzizDepartment of Anesthesia Techniques Al‐Noor University College Nineveh IraqAhmed ElawadyCollege of Technical Engineering The Islamic University Najaf IraqMohammed A. Al‐AnberLaboratory of Inorganic Materials and Polymers, Department of Chemistry, Faculty of Sciences Mutah University Al‐Karak JordanAmeer H. Al‐RubayeAmjad AliInstitute of Chemistry University of Silesia Katowice PolandNaushad AhmadDepartment of Chemistry, College of Science King Saud University Riyadh Kingdom of Saudi Arabia
ABI

Аннотация

This study presents an eco‐conscious approach to enhance the efficiency of the Suzuki–Miyaura cross‐coupling reaction. We first synthesized graphene oxide nanosheets using the Hummers method and then coated them to incorporate metallic copper on their surface. Following this, we conducted various analyses, including Fourier transform infrared spectroscopy (FT‐IR), scanning electron microscopy (SEM), transmission electron microscopy (TEM), Brunauer–Emmett–Teller (BET) analysis, cyclic voltammetry (CV), and energy‐dispersive X‐ray spectroscopy (EDS) identification, to characterize these modified nanosheets. Subsequently, we utilized Cu‐modified graphene oxide nanosheets as cathode catalysts in an electro‐oxidation synthesis setup. To verify the effectiveness of this novel approach, we utilized bromobenzene and phenylboronic acid as model substrates to synthesize biphenyl compounds. The reaction yielded impressive product yields ranging from 87% to 93%. Operating under environmentally friendly conditions, this electro‐oxidation synthesis not only enhances selectivity but also significantly reduces the environmental impact of the reaction. Our findings highlight the potential of this green chemistry strategy, offering a promising avenue for sustainable and efficient organic synthesis, as evidenced by the successful coupling of bromobenzene and phenylboronic acid with consistently high yields.

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