# CO2 Reduction Techniques and Catalysts

**Type:** Topics  
**Canonical URL:** https://scholariq.org/topics/co2-reduction-techniques-and-catalysts/

## Facts

| Field | Value |
| --- | --- |
| Description | This cluster of papers focuses on the electrochemical reduction of carbon dioxide to produce renewable fuels and chemicals. It covers topics such as electrocatalysis, catalysts for CO2 reduction, molecular and metallic surfaces, and selective reduction processes. |
| Domain | Physical Sciences |
| Field | Energy |
| OpenAlex ID | t11784 |
| Works | 40 |

## Topic papers all

Showing 15 of 40.

- [Active and Selective Conversion of CO<sub>2</sub> to CO on Ultrathin Au Nanowires](https://scholariq.org/papers/active-and-selective-conversion-of-co-sub-2-sub-to-co-on-ultrathin-au-nanowires/)
- [Tuning Sn-Catalysis for Electrochemical Reduction of CO<sub>2</sub> to CO via the Core/Shell Cu/SnO<sub>2</sub> Structure](https://scholariq.org/papers/tuning-sn-catalysis-for-electrochemical-reduction-of-co-sub-2-sub-to-co-via-the/)
- [Photocatalytic and photoelectrocatalytic reduction of CO <sub>2</sub> using heterogeneous catalysts with controlled nanostructures](https://scholariq.org/papers/photocatalytic-and-photoelectrocatalytic-reduction-of-co-sub-2-sub-using/)
- [Cu-based nanocatalysts for electrochemical reduction of CO2](https://scholariq.org/papers/cu-based-nanocatalysts-for-electrochemical-reduction-of-co2/)
- [3D Hierarchical ZnIn<sub>2</sub>S<sub>4</sub> Nanosheets with Rich Zn Vacancies Boosting Photocatalytic CO<sub>2</sub> Reduction](https://scholariq.org/papers/3d-hierarchical-znin-sub-2-sub-s-sub-4-sub-nanosheets-with-rich-zn-vacancies/)
- [The kinetics of reactions of carbon dioxide with monoethanolamine, diethanolamine and triethanolamine by a rapid mixing method](https://scholariq.org/papers/the-kinetics-of-reactions-of-carbon-dioxide-with-monoethanolamine-diethanolamine/)
- [Dehydrogenation of Formic Acid at Room Temperature: Boosting Palladium Nanoparticle Efficiency by Coupling with Pyridinic‐Nitrogen‐Doped Carbon](https://scholariq.org/papers/dehydrogenation-of-formic-acid-at-room-temperature-boosting-palladium/)
- [CF<sub>3</sub> Oxonium Salts, <i>O</i>-(Trifluoromethyl)dibenzofuranium Salts:  In Situ Synthesis, Properties, and Application as a Real CF<sub>3</sub><sup>+</sup> Species Reagent](https://scholariq.org/papers/cf-sub-3-sub-oxonium-salts-i-o-i-trifluoromethyl-dibenzofuranium-salts-in-situ/)
- [Engineering TiO2 nanomaterials for CO2 conversion/solar fuels](https://scholariq.org/papers/engineering-tio2-nanomaterials-for-co2-conversion-solar-fuels/)
- [Photochromic single atom Ag/TiO <sub>2</sub> catalysts for selective CO <sub>2</sub> reduction to CH <sub>4</sub>](https://scholariq.org/papers/photochromic-single-atom-ag-tio-sub-2-sub-catalysts-for-selective-co-sub-2-sub/)
- [Photocatalytic reduction of carbon dioxide to hydrocarbon using copper-loaded titanium dioxide](https://scholariq.org/papers/photocatalytic-reduction-of-carbon-dioxide-to-hydrocarbon-using-copper-loaded/)
- [Conductive Phthalocyanine‐Based Covalent Organic Framework for Highly Efficient Electroreduction of Carbon Dioxide](https://scholariq.org/papers/conductive-phthalocyanine-based-covalent-organic-framework-for-highly-efficient/)
- [C<sub>2+</sub> Selectivity for CO<sub>2</sub> Electroreduction on Oxidized Cu-Based Catalysts](https://scholariq.org/papers/c-sub-2-sub-selectivity-for-co-sub-2-sub-electroreduction-on-oxidized-cu-based/)
- [Synthesis of urea derivatives from amines and CO2 in the absence of catalyst and solvent](https://scholariq.org/papers/synthesis-of-urea-derivatives-from-amines-and-co2-in-the-absence-of-catalyst-and/)
- [Ultrafast charge transfer dynamics in 2D covalent organic frameworks/Re-complex hybrid photocatalyst](https://scholariq.org/papers/ultrafast-charge-transfer-dynamics-in-2d-covalent-organic-frameworks-re-complex/)

## Topic primary papers

Showing 15 of 17.

- [Active and Selective Conversion of CO<sub>2</sub> to CO on Ultrathin Au Nanowires](https://scholariq.org/papers/active-and-selective-conversion-of-co-sub-2-sub-to-co-on-ultrathin-au-nanowires/)
- [Tuning Sn-Catalysis for Electrochemical Reduction of CO<sub>2</sub> to CO via the Core/Shell Cu/SnO<sub>2</sub> Structure](https://scholariq.org/papers/tuning-sn-catalysis-for-electrochemical-reduction-of-co-sub-2-sub-to-co-via-the/)
- [Photocatalytic and photoelectrocatalytic reduction of CO <sub>2</sub> using heterogeneous catalysts with controlled nanostructures](https://scholariq.org/papers/photocatalytic-and-photoelectrocatalytic-reduction-of-co-sub-2-sub-using/)
- [Cu-based nanocatalysts for electrochemical reduction of CO2](https://scholariq.org/papers/cu-based-nanocatalysts-for-electrochemical-reduction-of-co2/)
- [The kinetics of reactions of carbon dioxide with monoethanolamine, diethanolamine and triethanolamine by a rapid mixing method](https://scholariq.org/papers/the-kinetics-of-reactions-of-carbon-dioxide-with-monoethanolamine-diethanolamine/)
- [Conductive Phthalocyanine‐Based Covalent Organic Framework for Highly Efficient Electroreduction of Carbon Dioxide](https://scholariq.org/papers/conductive-phthalocyanine-based-covalent-organic-framework-for-highly-efficient/)
- [C<sub>2+</sub> Selectivity for CO<sub>2</sub> Electroreduction on Oxidized Cu-Based Catalysts](https://scholariq.org/papers/c-sub-2-sub-selectivity-for-co-sub-2-sub-electroreduction-on-oxidized-cu-based/)
- [CO2 transformation to multicarbon products by photocatalysis and electrocatalysis](https://scholariq.org/papers/co2-transformation-to-multicarbon-products-by-photocatalysis-and/)
- [Conductive phthalocyanine-based metal-organic framework as a highly efficient electrocatalyst for carbon dioxide reduction reaction](https://scholariq.org/papers/conductive-phthalocyanine-based-metal-organic-framework-as-a-highly-efficient/)
- [Tuning the Inter‐Metal Interaction between Ni and Fe Atoms in Dual‐Atom Catalysts to Boost CO<sub>2</sub> Electroreduction](https://scholariq.org/papers/tuning-the-inter-metal-interaction-between-ni-and-fe-atoms-in-dual-atom/)
- [Continuously Producing Highly Concentrated and Pure Acetic Acid Aqueous Solution via Direct Electroreduction of CO<sub>2</sub>](https://scholariq.org/papers/continuously-producing-highly-concentrated-and-pure-acetic-acid-aqueous-solution/)
- [Photocathode engineering for efficient photoelectrochemical CO2 reduction](https://scholariq.org/papers/photocathode-engineering-for-efficient-photoelectrochemical-co2-reduction/)
- [Highly Selective Electrocatalytic Reduction of CO<sub>2</sub> into Methane on Cu–Bi Nanoalloys](https://scholariq.org/papers/highly-selective-electrocatalytic-reduction-of-co-sub-2-sub-into-methane-on-cu/)
- [Ultrathin, Cationic Covalent Organic Nanosheets for Enhanced CO<sub>2</sub> Electroreduction to Methanol](https://scholariq.org/papers/ultrathin-cationic-covalent-organic-nanosheets-for-enhanced-co-sub-2-sub/)
- [Synergistic Effect in a Metal–Organic Framework Boosting the Electrochemical CO<sub>2</sub> Overall Splitting](https://scholariq.org/papers/synergistic-effect-in-a-metal-organic-framework-boosting-the-electrochemical-co/)

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Source: ScholarIQ — public research metadata, principally OpenAlex. See https://scholariq.org/sources/ for provenance and https://scholariq.org/methodology/ for what these figures mean.
