Novel Single Perovskite Material for Visible‐Light Photocatalytic CO2 Reduction via Joint Experimental and DFT Study DOI

Ulkar Samadova,

Amil Aligayev, Pir Muhammad Ismail

et al.

Small, Journal Year: 2024, Volume and Issue: unknown

Published: Nov. 20, 2024

Abstract Developing advanced and economically viable technologies for the capture utilization of carbon dioxide (CO 2 ) is crucial sustainable energy production from fossil fuels. Converting CO into valuable chemicals fuels a promising approach to mitigate atmospheric levels. Among various methods, photocatalytic reduction stands out its potential reduce emissions produce useful products. Here, novel perovskite ZnMoFeO 3 (ZMFO) nanosheets are presented as semiconductor photocatalysts reduction. Experimental results show that ZMFO has narrow bandgap, exceptional visible light response, large specific surface area, high crystallinity, surface‐active sites, leading an impressive activity 24.87 µmolg −1 h strong stability. Theoretical calculations reveal conversion CH 4 on follows formaldehyde carbine pathways. This study provides significant insights designing innovative oxide‐based economical efficient systems.

Language: Английский

Advancing H2O2 electrosynthesis: enhancing electrochemical systems, unveiling emerging applications, and seizing opportunities DOI
Zhiping Deng, Seung Joon Choi, Ge Li

et al.

Chemical Society Reviews, Journal Year: 2024, Volume and Issue: 53(16), P. 8137 - 8181

Published: Jan. 1, 2024

Hydrogen peroxide (H

Language: Английский

Citations

21

Direct Electrochemical Reduction of CO2 to C2+ Chemicals: Catalysts, Microenvironments, and Mechanistic Understanding DOI
Shichen Guo, J. Wang, Haozhe Zhang

et al.

ACS Energy Letters, Journal Year: 2025, Volume and Issue: 10(1), P. 600 - 619

Published: Jan. 2, 2025

The electrochemical reduction reaction of CO2 (eCO2RR) to chemicals presents a viable solution for addressing climate change and sustainable manufacturing. In this Review, we describe the recent advancements in eCO2RR multicarbon (C2+) production from aspects catalyst structure, microenvironments, mechanistic understanding. We draw experimental theoretical comparisons between systems containing bulk highly dispersed metals, alloys, metal compounds recount new results microenvironmental impacts as well catalytic mechanism. From our own studies, offer some viewpoints on electrocatalytic mechanism during complex multistep proton-coupled electron transfers propose several research directions unlocking full potential scalable industrial CO2-to-C2+ conversion.

Language: Английский

Citations

2

Revolutionizing electrochemical CO2 reduction to deeply reduced products on non-Cu-based electrocatalysts DOI

Haoming Yu,

Hsiwen Wu,

Yuen Leong Chow

et al.

Energy & Environmental Science, Journal Year: 2024, Volume and Issue: 17(15), P. 5336 - 5364

Published: Jan. 1, 2024

Producing deeply reduced (>2 e − per carbon atom) products from the electrochemical CO 2 reduction reaction on non-Cu-based catalysts is an attractive and sustainable approach for utilization.

Language: Английский

Citations

8

Promotion of C─C Coupling in the CO2 Electrochemical Reduction to Valuable C2+ Products: From Micro‐Foundation to Macro‐Application DOI Open Access
Yanjun Guan,

Youzhi Li,

Zhongjian Li

et al.

Advanced Materials, Journal Year: 2025, Volume and Issue: unknown

Published: Feb. 2, 2025

Abstract The electrochemical CO 2 reduction reaction (CO RR) to valuable C 2+ products emerges as a promising strategy for converting intermittent renewable energy into high‐energy‐density fuels and feedstock. Leveraging its substantial commercial potential compatibility with existing infrastructure, the conversion of multicarbon hydrocarbons oxygenates (C ) holds great industrial promise. However, process is hampered by complex multielectron‐proton transfer reactions difficulties in reactant activation, posing significant thermodynamic kinetic barriers commercialization production. Addressing these necessitates comprehensive approach encompassing multiple facets, including effective control C─C coupling electrolyzers using efficient catalysts optimized local environments. This review delves advancements outstanding challenges spanning from microcosmic macroscopic scales, design nanocatalysts, optimization microenvironment, development electrolyzers. By elucidating influence electrolyte environment, exploring flow cells, guidelines are provided future research aimed at promoting coupling, thereby bridging microscopic insights applications field electroreduction.

Language: Английский

Citations

1

Recent research progress in hydrogen peroxide synthesized by electrocatalytic process with two-electron transfer: A brief review DOI
Yikang Liu, Wei Bing, Yang Lv

et al.

Journal of environmental chemical engineering, Journal Year: 2024, Volume and Issue: 12(3), P. 112972 - 112972

Published: May 3, 2024

Language: Английский

Citations

7

MOF-Derived N-Doped Carbon-Wrapped Ni Electrocatalyst for Highly Efficient Electrochemical CO2 Reduction to CO DOI

Minglong Guo,

Shengjun Du, Guangxing Yang

et al.

Energy & Fuels, Journal Year: 2024, Volume and Issue: 38(12), P. 11043 - 11050

Published: June 6, 2024

Electrochemical CO2 reduction reaction (ECO2RR) represents a promising approach for attaining neutral carbon cycle and the sustainable production of value-added chemicals. However, fabricating nonprecious metals catalysts with high selectivity within broad potential window excellent stability under tough electrolytic conditions remains great challenge. Herein, we developed an in situ confining strategy to prepare metal–organic frameworks derived N-doped carbon-wrapped nickel nanoparticles ECO2RR CO. The optimal Ni-MOF@NC exhibited remarkable Faradaic efficiency (FE) 99% partial current density −26.3 mA/cm2 toward CO at −1.0 V (vs RHE). FE maintained value over 90% wide range −0.8 −1.4 well-designed control experiments reveal that catalytic activity is attributed layer encapsulating Ni particles. Furthermore, benefiting from protective carbon–nitrogen shell, composite robust durability local alkaline environment. This work offers design principle constructing electrocatalysts selectivity.

Language: Английский

Citations

5

Electrochemically synthesized H2O2 at industrial-level current densities enabled by in situ fabricated few-layer boron nanosheets DOI Creative Commons
Yuhan Wu, Yuying Zhao, Qixin Yuan

et al.

Nature Communications, Journal Year: 2024, Volume and Issue: 15(1)

Published: Dec. 30, 2024

Carbon nanomaterials show outstanding promise as electrocatalysts for hydrogen peroxide (H

Language: Английский

Citations

5

Boron-Doped Biomass Carbon Nanostructures as Electrocatalysts for the Two-Electron Oxygen Reduction Reaction DOI
Xiang Xu,

Ruting Xu,

Yuying Zhao

et al.

ACS Applied Nano Materials, Journal Year: 2024, Volume and Issue: 7(16), P. 18912 - 18919

Published: Aug. 6, 2024

Highly active B atom dopants were successfully introduced into a biomass carbon matrix as promising electrocatalysts for the two-electron oxygen reduction reaction (2e– ORR) to synthesize hydrogen peroxide (H2O2) by decomposing boron nanosheets with flash Joule heating (FJH) progress. Moreover, FJH process can greatly improve graphitization of leading rapid electron transfer during electrocatalysis. The as-prepared atom–doped nanomaterial (f-Bs-C) showed enhanced 2e– ORR performance outstanding H2O2 selectivity (91–94%) at 0.25–0.6 V vs reversible electrode (RHE) measured via rotating ring-disk (RRDE) in an alkaline electrolyte, and Faradaic efficiency was still greater than 80% 11 h mass activity 798 mmol gcatalyst–1 h–1 actual three-electrode flow cell setup. overall catalytic is preferable majority reported carbon-based catalysts. Density functional theory that O connected atoms induce charge density deficiency on site acting high sites. This research provides exploration fabricate heteroatom enhance capability biomass-based

Language: Английский

Citations

4

Synthesizing Liquid Fuels Over Carbon‐Based Catalysts Via Co2 Conversion DOI Creative Commons
Cederick Cyril Amoo, Qingjie Ge,

Vitaly Ordomsky

et al.

Advanced Science, Journal Year: 2025, Volume and Issue: unknown

Published: Feb. 26, 2025

Abstract The unique characteristics of carbon materials make them flexible for applications in heterogeneous catalysis. Their interest is expanding the conscious efforts being made toward sustainable fuel production. A notable application heterogenous conversion CO 2 to liquid fuels, which exploits materials, taking advantage their electronic configurations, high surface area, pore properties, and synergistic role In this review, a critical overview rapidly developing field presented. Various allotropes derivatives, as well some strategies fabricating carbon‐based catalysts are keenly highlighted within thermal‐, electro‐, photocatalytic fuels. Distinct emphasis placed on different by investigating synergy attained at catalyst interfaces, physicochemical properties attained, influence enhancing specific fuels synthesis. Finally, work concluded, followed an outlook detailing key challenges that need addressing.

Language: Английский

Citations

0

Rationally Designing Efficient Biomass Carbon Electrocatalysts for H2O2 Synthesis and Near-Neutral Zn–Air Batteries with Preliminary Machine Learning Guidance DOI
Jiawei He,

Zijun Shen,

Shengchun Hu

et al.

ACS Applied Materials & Interfaces, Journal Year: 2025, Volume and Issue: unknown

Published: April 8, 2025

Biomass-based carbon materials are considered promising metal-free catalysts for the 2e- oxygen reduction reaction (ORR) to synthesize H2O2 and act as air electrodes in Zn-air batteries. However, optimization of catalyst structure is a complex process due diversity biomass precursors synthesis parameters. Machine learning, new artificial intelligence technology, has recently been used various fields owing its ability rapidly analyze large amounts data guide material synthesis. Consequently, we constructed machine learning model based on previously reported experimental guided fabrication boron-doped ORR. The achieved catalytic performance exceeded most ORR terms selectivity (90-95% broad potentials 0.30-0.68 V vs reversible hydrogen electrode), stability (maintaining over 90% 12 h), yield (3450 mmol gcatalyst-1 h-1), Faraday efficiency (over 90%). We applied batteries showed high capacity (2856 mAh g-1) twice that traditional commercial metal catalysts. Therefore, this study proposed an effective biomass-based field electrocatalysis.

Language: Английский

Citations

0