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Rational Design of Advanced Metal Organic Framework‐Based Nanostructured Catalysts toward Electrocatalytic CO<sub>2</sub> Conversion: A Mini Review

Mohammed AlghamdiDepartment of Computer Science Al-Baha University Al-Baha City Kingdom of Saudi ArabiaF. Al-dolaimyDepartment of Engineering Al-Zahraa University for Women Karbala IraqSaja Abdulrahman AlthobaitiDepartment of Chemistry College of Arts and Science Prince Sattam Bin Abdulaziz University Wadi Addawasir 18510 Saudi ArabiaEbraheem Abdu Musad SalehDepartment of Chemistry Prince Sattam Bin Abdulaziz University College of Arts and Science Wadi Al-Dawasir 11991 Saudi ArabiaSherzod AbdullaevFaculty of Chemical Engineering New Uzbekistan University Tashkent UzbekistanKamal SharmaInstitute of Engineering and Technology GLA University Mathura U.P 281406 IndiaAli HasanCollege of Pharmacy Al-Bayan University Baghdad IraqKamran QadirPanjin Institute of Industrial Technology Liaoning Key Laboratory of Chemical Additive Synthesis and Separation Dalian University of Technology Panjin Liaoning 124221 ChinaSokaina Issa KadhimBuliding and Construction Technical Engineering Department College of Technical Engineering The Islamic University Najaf IraqAdeeb Abdulally Abdulhussien AlazbjeeCollage of Medicine Al-Ayen University Thi-Qar IraqWaqasg Aminiona AbharDepartment of Chemistry College of Arts and Science Prince Sattam Bin Abdulaziz University Wadi Addawasir 18510 Saudi ArabiaXie Shouhong LiangoDepartment of Chemistry College of Arts and Science Prince Sattam Bin Abdulaziz University Wadi Addawasir 18510 Saudi Arabia
Energy Technologyjournal2023en
ABI

Аннотация

Carbon dioxide emission into the atmosphere, which originates from fossil fuels consumption, has led to a serious environmental and energy crisis. Electrochemical CO 2 reduction reaction (CO 2 RR) into valuable chemicals such as carbon monoxide, ethanol, ethylene, and methane not only help lower the CO 2 concentration in the atmosphere but is also beneficial for sustainable energy production. Therefore, numerous works are assigned to improving efficient electrocatalytic materials for the selective CO 2 RR. Metal–organic framework (MOF)‐derived catalytic materials mostly based on transition metals demonstrate permissible CO 2 RR owing to their specific composition, tunable surface nanostructure and texture, and affordable market prices. In this work, the best effort is put to describe the most basic concept of electrochemical CO 2 RR to provide a consensus. The effect of MOF structure and surface analysis are discussed. This is reason that MOFs as catalysts for electrochemical CO 2 RR offers several advantages over traditional catalysts, such as tunable surface structure, multifunctionality, selectivity control, and stability under CO 2 RR operation. And then, some of the most recent reported works on MOF‐based catalysts are summarized, to provide and inspire further investigations and ideas in this research field. However, despite these advantages, there are still research gaps that need to be addressed. Some of these gaps include being cost‐effective and economical process for preparing MOF‐based catalysts, long‐term stability for industrial usage, and scalability of the catalyst. Thereby, further studies are essential to fully exploit the potential of MOFs in advancing CO 2 RR technologies.

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