Organic molecules involved in Cu-based electrocatalysts for selective CO2 reduction to C2+ products DOI
Ping Chen, Yuming Wu, Thomas E. Rufford

и другие.

Materials Today Chemistry, Год журнала: 2022, Номер 27, С. 101328 - 101328

Опубликована: Дек. 24, 2022

Язык: Английский

Multiscale CO2 Electrocatalysis to C2+ Products: Reaction Mechanisms, Catalyst Design, and Device Fabrication DOI
Tianxiang Yan, Xiaoyi Chen,

Lata Kumari

и другие.

Chemical Reviews, Год журнала: 2023, Номер 123(17), С. 10530 - 10583

Опубликована: Авг. 17, 2023

Electrosynthesis of value-added chemicals, directly from CO2, could foster achievement carbon neutral through an alternative electrical approach to the energy-intensive thermochemical industry for utilization. Progress in this area, based on electrogeneration multicarbon products CO2 electroreduction, however, lags far behind that C1 products. Reaction routes are complicated and kinetics slow with scale up high levels required commercialization, posing significant problems. In review, we identify summarize state-of-art progress synthesis a multiscale perspective discuss current hurdles be resolved generation reduction including atomistic mechanisms, nanoscale electrocatalysts, microscale electrodes, macroscale electrolyzers guidelines future research. The review ends cross-scale links discrepancies between different approaches extensions performance stability issues arise industrial environment.

Язык: Английский

Процитировано

141

Electrocatalytic CO2 Reduction to C2+ Products in Flow Cells DOI
Qin Chen, Xiqing Wang,

Yajiao Zhou

и другие.

Advanced Materials, Год журнала: 2023, Номер 36(5)

Опубликована: Авг. 31, 2023

Abstract Electrocatalytic CO 2 reduction into value‐added fuels and chemicals by renewable electric energy is one of the important strategies to address global shortage carbon emission. Though classical H‐type electrolytic cell can quickly screen high‐efficiency catalysts, low current density limited mass transfer process essentially impede its industrial applications. The cells based on electrolyte flow system (flow cells) have shown great potential for devices, due higher density, improved local concentration, better efficiency. design optimization are significance further accelerate industrialization electrocatalytic reaction (CO RR). In this review, progress RR C 2+ products concerned. Firstly, main events in development outlined. Second, principles products, architectures, types summarized. Third, optimizing generate reviewed detail, including cathode, anode, ion exchange membrane, electrolyte. Finally, preliminary attempts, challenges, research prospects toward discussed.

Язык: Английский

Процитировано

92

Defective Metal Oxides: Lessons from CO2RR and Applications in NOxRR DOI Creative Commons
Thanh Son Bui, Emma C. Lovell, Rahman Daiyan

и другие.

Advanced Materials, Год журнала: 2023, Номер 35(28)

Опубликована: Фев. 23, 2023

Abstract Sluggish reaction kinetics and the undesired side reactions (hydrogen evolution self‐reduction) are main bottlenecks of electrochemical conversion reactions, such as carbon dioxide nitrate reduction (CO 2 RR NO 3 RR). To date, conventional strategies to overcome these challenges involve electronic structure modification modulation charge‐transfer behavior. Nonetheless, key aspects surface modification, focused on boosting intrinsic activity active sites catalyst surface, yet be fully understood. Engingeering oxygen vacancies (OVs) can tune surface/bulk improve electrocatalysts. The continuous breakthroughs significant progress in last decade position engineering OVs a potential technique for advancing electrocatalysis. Motivated by this, state‐of‐the‐art findings roles both CO presented. review starts with description approaches constructing techniques characterizing OVs. This is followed an overview mechanistic understanding detailed discussion RR. Then, insights into mechanism based early highlighted. Finally, designing RR/NO electrocatalysts perspectives studying OV provided.

Язык: Английский

Процитировано

67

A comprehensive review of electrochemical reduction of CO2 to methanol: Technical and design aspects DOI Creative Commons

Kunlanan Wiranarongkorn,

Kornkamol Eamsiri,

Yong‐Song Chen

и другие.

Journal of CO2 Utilization, Год журнала: 2023, Номер 71, С. 102477 - 102477

Опубликована: Апрель 24, 2023

The electrochemical reduction of CO2 (ERC) is a promising utilization technology that can convert into wide variety fuels and chemicals via reactions. Among the various products be produced from ERC, methanol potential liquid product utilized as fuel an intermediate feedstock for chemical production. Recently, many researchers have shown interest in ERC process selective development production has been done both experimental studies, particularly electrocatalyst design development, analysis to overcome challenges such low solubility, selectivity, inefficient catalysts, mass transfer limitations, high overpotentials, commercialization. This review aims present progress studies on ERC. An overview conversion involving hydrogenation, photoelectrochemical first described. Then, key factors affecting electrocatalyst, electrolyte, operating conditions, are analyzed. Furthermore, modeling analyses discussed consider commercialization form methanol. Finally, suggestions future research given final section this review.

Язык: Английский

Процитировано

47

Green Conversion of Carbon Dioxide and Sustainable Fuel Synthesis DOI Creative Commons
Hosam M. Saleh, Amal I. Hassan

Fire, Год журнала: 2023, Номер 6(3), С. 128 - 128

Опубликована: Март 22, 2023

Carbon capture and use may provide motivation for the global problem of mitigating warming from substantial industrial emitters. Captured CO2 be transformed into a range products such as methanol renewable energy sources. Polymers, cement, heterogeneous catalysts varying chemical synthesis are examples commercial goods. Because some these components converted power, is feedstock excellent transporter. By employing collected atmosphere primary hydrocarbon source, carbon-neutral fuel created. The subsequently burned, released like byproduct combustion process. There no net carbon dioxide emitted or withdrawn environment during this process, hence name fuel. In world with net-zero emissions, anthroposphere will have attained its hold-up capacity in response to particular average temperature increase, 1.5 °C. As result, each atom removed subsurface (lithosphere) must returned it, it expelled atmosphere. removal technologies, biofuels sequestration direct air capture, required lower high concentration if Paris Agreement’s ambitious climate targets realized. scenario, consumption expected contribute displacement fossil fuels. This article includes conceptual study an evaluation technology that enables industry net-zero-CO2-emissions environment. These based on novel processes, along “green” hydrogen, biomass. It also shed light innovative methods green transformation getting sustainable, environmentally friendly energy.

Язык: Английский

Процитировано

46

Plasma Catalysis for Hydrogen Production: A Bright Future for Decarbonization DOI Creative Commons
Ni Wang, Hope O. Otor,

Gerardo Rivera-Castro

и другие.

ACS Catalysis, Год журнала: 2024, Номер 14(9), С. 6749 - 6798

Опубликована: Апрель 16, 2024

Thermal approaches have played a dominant role in driving chemical reactions within the chemicals and fuels industries, benefiting from ongoing enhancements efficiency via heat integration, catalyst development, process intensification. Nevertheless, these traditional thermal remain heavily reliant on fossil fuels, there exists an urgent demand for implementation of renewable energy technologies to synthesize commodity chemicals, specialty chemicals. Nonthermal plasmas gained considerable attention recent years as promising solution, prospects combining with suitable catalysts become even more appealing. Moreover, evolution nonthermal plasma catalysis generation clean hydrogen could be transformative reducing greenhouse gas emissions. This comprehensive review highlights influential contributions production, discusses advancements, provides future researchers aiming advance production hydrogen.

Язык: Английский

Процитировано

21

Unveiling Key Descriptors of Ionomer Materials for Enhanced Electrochemical CO2 Reduction DOI

Wonsang Jung,

Sang‐Hun Shin, Sejin Park

и другие.

ACS Energy Letters, Год журнала: 2025, Номер 10(1), С. 620 - 628

Опубликована: Янв. 3, 2025

Polymeric ionomers near the catalyst surface of CO2 reduction reaction (CO2RR) electrodes affect their efficiency; however, multifaceted properties complicate structure–activity relationship elucidation. Here, we synthesized polycarbazole-based anion-exchange (QPC) bearing varying functionalized side chains to explore this relationship. Comprehensive analysis in physicochemical properties, electrochemical activity, and operando ATR-SEIRAS revealed that functional group modification significantly influenced intrinsic ionomer thereby affecting Ag microenvironments interfacial water structures, kinetics protonation step for CO2RR hydrogen evolution (HER). Notably, QPC-trimethyl phosphonium (TMP) induced favorable having a high proportion strong H-bonded with low Stark tuning slopes, which inhibit HER promote CO2RR. A CO Faradaic efficiency (>90%) was maintained using QPC-TMP membrane electrode assembly, even under concentrations (100–15%) elevated temperatures (28–72 °C). These findings suggest catalytic environment can be optimized by fine-tuning structure, contributing advancement high-performance ionomers.

Язык: Английский

Процитировано

2

Electrocatalytic conversion of CO2 into selective carbonaceous fuels using metal-organic frameworks: An overview of recent progress and perspectives DOI

E. Sivasurya,

Raji Atchudan, Mohamed Gamal Mohamed

и другие.

Materials Today Chemistry, Год журнала: 2025, Номер 44, С. 102538 - 102538

Опубликована: Янв. 21, 2025

Язык: Английский

Процитировано

2

Novel technologies for CO2 conversion to renewable fuels, chemicals, and value-added products DOI Creative Commons
Omojola Awogbemi, Dawood Desai

Discover Nano, Год журнала: 2025, Номер 20(1)

Опубликована: Фев. 11, 2025

Population growth, urbanization, industrialization, and increased socioeconomic activities have escalated carbon dioxide (CO2) formation concentration in the atmosphere. Increased generation release of CO2 into atmosphere exacerbates global warming impedes environmental sustainability. One strategies to combat unpleasant impact is conversion useful products. This study reviews benefits, drawbacks, recommendations for effectively utilizing conventional, hybrid, novel technologies converting energy chemical The deficiencies noticed with chemical, thermal, biological, catalytic (CTs) necessitated use hybrid such as biochemical, electrochemical, photocatalytic, plasma chemical. posits that development deployment CTs like bio-electrochemical, photo-electrochemical, artificial photosynthesis will advance research domain revolutionize product formation. transformation renewable fuels methane, syngas, C2 products methanol, formic acid, dimethyl carbonate, oxygenates, formaldehyde, hydrocarbons is, eco-friendly, reduces air pollution, mitigates climate change, supports security, provides valuable feedstocks industries. recommends optimization process parameters reactor design configurations, funding, provision regulatory framework support, partnerships among academia, industry players, government agencies achieve cost reduction, reduce impacts, drawbacks associated CTs.

Язык: Английский

Процитировано

2

Development of highly stable Ni-doped zeolitic imidazole framework (ZIF-67) based catalyst for CO2 methanation reaction DOI
Ali Faris Aldoghachi,

Taufiq-Yap Yun Hin,

Mohd Izham Saiman

и другие.

International Journal of Hydrogen Energy, Год журнала: 2024, Номер 57, С. 1474 - 1485

Опубликована: Янв. 21, 2024

Язык: Английский

Процитировано

16