Research graph
References from Constructing a Dynamic Interface via Thermoresponsive Polymers to Promote CO2 Electroreduction in a Strongly Acidic Electrolyte. Local targets link to admitted publications; unresolved targets remain external evidence.
CO2 electrolyzers
10.1021/acs.chemrev.3c00206 · 2024 · External reference
Review on strategies for improving the added value and expanding the scope of CO2 electroreduction products
10.1039/d3cs00857f · 2024 · External reference
Tailoring acidic microenvironments for carbon-efficient CO2 electrolysis over a Ni-N-C catalyst in a membrane electrode assembly electrolyzer
10.1039/d2ee03482d · 2023 · External reference
Ampere-level electroreduction of CO2 and CO
10.1039/d4cs00863d · 2025 · External reference
Constructing monolayer Fe clusters as model catalysts for CO2 electroreduction
10.1021/jacs.5c05325 · 2025 · External reference
Catalyst-electrolyte interface engineering propels progress in acidic CO2 electroreduction
10.1039/d4ee05715e · 2025 · External reference
Emerging atomically precise metal nanoclusters and ultrasmall nanoparticles for efficient electrochemical energy catalysis: synthesis strategies and surface/interface engineering
10.1007/s41918-024-00217-w · 2024 · External reference
Dynamically reconstructed triple-copper-vacancy associates confined in Cu nanowires enabling high-rate and selective CO2 electroreduction to C2+ Products
10.1002/adma.202314209 · 2024 · External reference
NHC-CDI ligands boost multicarbon production in electrocatalytic CO2 reduction by increasing accumulated charged intermediates and promoting *CO dimerization on Cu
10.1021/jacs.3c14306 · 2024 · External reference
Acid-humidified CO2 gas input for stable electrochemical CO2 reduction reaction
10.1126/science.adr3834 · 2025 · External reference
Size-adjustable high-entropy alloy nanoparticles as an efficient platform for electrocatalysis
10.1002/anie.202423765 · 2025 · External reference
Regulating interfacial hydrogen-bonding networks by implanting Cu sites with perfluorooctane to accelerate CO2 electroreduction to ethanol
10.1002/anie.202418459 · 2025 · External reference
Dynamic Cu0/Cu+ Interface Promotes Acidic CO2 Electroreduction
10.1021/acscatal.4c01516 · 2024 · External reference
Tandem gold/copper catalysis and morphological tuning via wrinkling to boost CO2 electroreduction into C2+ products
10.1016/j.nanoen.2024.110457 · 2025 · External reference
High carbon utilization in CO2 reduction to multi-carbon products in acidic media
10.1038/s41929-022-00788-1 · 2022 · External reference
CO2 electrolysis to multicarbon products in strong acid
10.1126/science.abg6582 · 2021 · External reference
Mitigating carbonate formation in CO2 electrolysis
10.1016/j.nxener.2023.100030 · 2023 · External reference
The future of low-temperature carbon dioxide electrolysis depends on solving one basic problem
10.1038/s41467-020-19135-8 · 2020 · External reference
Addressing the carbonate issue: electrocatalysts for acidic CO2 reduction reaction
10.1002/adma.202312894 · 2025 · External reference
Address the “alkalinity problem” in CO2 electrolysis with catalyst design and translation
10.1016/j.joule.2021.02.008 · 2021 · External reference
Enhancing CO2 electroreduction to ethylene in acidic solution by optimizing cation configuration on the Cu surface
10.1021/jacs.5c06402 · 2025 · External reference
Electrochemical CO2 reduction in acidic media: a perspective
10.1021/jacs.5c00164 · 2025 · External reference
Electrochemical carbon dioxide reduction in acidic media
10.1007/s41918-024-00210-3 · 2024 · External reference
Accelerating acidic CO2 electroreduction: strategies beyond catalysts
10.1039/d4sc04283b · 2024 · External reference
Reaction environment regulation for electrocatalytic CO2 reduction in acids
10.1002/anie.202404574 · 2024 · External reference
Strategies for efficient CO2 electroreduction in acidic conditions
10.1016/s1872-2067(23)64511-5 · 2023 · External reference
Accelerating electrochemical CO2 reduction to multi-carbon products via asymmetric intermediate binding at confined nanointerfaces
10.1038/s41467-023-36926-x · 2023 · External reference
Electron-rich Bi nanosheets promoteCO2·– formation for high-performance and pH-universal electrocatalytic CO2 reduction
10.1002/anie.202217569 · 2023 · External reference
Stabilizing *CO2 intermediates at the acidic interface using molecularly dispersed cobalt phthalocyanine as catalysts for CO2 reduction
10.1002/anie.202317942 · 2024 · External reference
Low-coordination indium single-atom sites anchored on a metal-organic framework single-layer boosts electroreduction of CO2 into formic acid
10.1002/anie.202511132 · 2025 · External reference
Hydrolysis of electrolyte cations enhances the electrochemical reduction of CO2 over Ag and Cu
10.1021/jacs.6b07612 · 2016 · External reference
Quantitative understanding of cation effects on the electrochemical reduction of CO2 and H+ in acidic solution
10.1021/acscatal.2c04875 · 2023 · External reference
Confinement of an alkaline environment for electrocatalytic CO2 reduction in acidic electrolytes
10.1039/d3sc01040f · 2023 · External reference
Molecular modification enables CO2 electroreduction to methane on platinum surface in acidic media
10.1093/nsr/nwae361 · 2024 · External reference
Organic additive-derived films on Cu electrodes promote electrochemical CO2 reduction to C2+ products under strongly acidic conditions
10.1002/anie.202216102 · 2023 · External reference
CO2 reduction in strong acid
10.1038/s44160-024-00608-3 · 2024 · External reference
Organic molecules involved in Cu-based electrocatalysts for selective CO2 reduction to C2+ products
10.1016/j.mtchem.2022.101328 · 2023 · External reference
Dynamically formed surfactant assembly at the electrified electrode-electrolyte interface boosting CO2 electroreduction
10.1021/jacs.2c02486 · 2022 · External reference
A covalent molecular design enabling efficient CO2 reduction in strong acids
10.1038/s44160-024-00588-4 · 2024 · External reference
Supported Au single atoms and nanoparticles on MoS2 for highly selective CO2-to-CH3COOH photoreduction
10.1038/s41467-024-52291-9 · 2024 · External reference
Self-regulated photoresponsive heterogeneous PNIPAM hydrogel actuators
10.1039/d4nr05257a · 2025 · External reference
Revisiting the conformational adsorption of L- and D-cysteine on Au nanoparticles by Raman spectroscopy
10.1002/jrs.5782 · 2020 · External reference
Spectro-electrochemical insights into electrocatalytic CO2 reduction in acidic media through model catalyst design
10.1021/jacs.5c12659 · 2025 · External reference
Molecular engineering of cation solvation structure for highly selective carbon dioxide electroreduction
10.1002/anie.202303233 · 2023 · External reference
Interfacial water tuning by intermolecular spacing for stable CO2 electroreduction to C2+ products
10.1002/anie.202309319 · 2023 · External reference
Conversion of CO2 to multicarbon products in strong acid by controlling the catalyst microenvironment
10.1038/s44160-022-00234-x · 2023 · External reference
100th anniversary of macromolecular science viewpoint: poly(N-isopropylacrylamide)-based thermally responsive micelles
10.1021/acsmacrolett.0c00342 · 2020 · External reference
Collapse and swelling of thermally sensitive poly(N-isopropylacrylamide) brushes monitored with a quartz crystal microbalance
10.1021/jp046903m · 2005 · External reference
Counterion-tunable thermosensitivity of strong polyelectrolyte brushes
10.1021/acs.langmuir.9b02982 · 2019 · External reference
Temperature-responsive PLLA/PNIPAM nanofibers for switchable release
10.1016/j.msec.2016.11.028 · 2017 · External reference
Screening of various catalysts for electrochemical CO2 reduction at elevated temperatures and pressures
10.1002/ceur.202500223 · 2025 · External reference
Hydrogen bond stabilized *CO intermediate enables CO2 electroreduction to multi-electron products on silver catalysts
10.1038/s41467-026-73970-9 · 2026 · External reference
In situ Raman spectroscopy reveals the structure and dissociation of interfacial water
10.1038/s41586-021-04068-z · 2021 · External reference
In situ probing electrified interfacial water structures at atomically flat surfaces
10.1038/s41563-019-0356-x · 2019 · External reference
Cation-dependent interfacial structures and kinetics for outer-sphere electron-transfer reactions
10.1021/acs.jpcc.0c10492 · 2021 · External reference
Efficient CO2-to-methanol electrocatalysis in acidic media via microenvironment-tuned cobalt phthalocyanine
10.1038/s41565-025-02059-z · 2026 · External reference
Progress and perspective for in situ studies of CO2 reduction
10.1021/jacs.0c02973 · 2020 · External reference
Addressing the carbonate issue: electrocatalysts for acidic CO2 reduction reaction
10.1002/adma.202312894 · ExternalCitation · doi-reference
Dynamically reconstructed triple-copper-vacancy associates confined in Cu nanowires enabling high-rate and selective CO2 electroreduction to C2+ Products
10.1002/adma.202314209 · ExternalCitation · doi-reference
Organic additive-derived films on Cu electrodes promote electrochemical CO2 reduction to C2+ products under strongly acidic conditions
10.1002/anie.202216102 · ExternalCitation · doi-reference
Electron-rich Bi nanosheets promoteCO2·– formation for high-performance and pH-universal electrocatalytic CO2 reduction
10.1002/anie.202217569 · ExternalCitation · doi-reference
Molecular engineering of cation solvation structure for highly selective carbon dioxide electroreduction
10.1002/anie.202303233 · ExternalCitation · doi-reference
Interfacial water tuning by intermolecular spacing for stable CO2 electroreduction to C2+ products
10.1002/anie.202309319 · ExternalCitation · doi-reference
Stabilizing *CO2 intermediates at the acidic interface using molecularly dispersed cobalt phthalocyanine as catalysts for CO2 reduction
10.1002/anie.202317942 · ExternalCitation · doi-reference
Reaction environment regulation for electrocatalytic CO2 reduction in acids
10.1002/anie.202404574 · ExternalCitation · doi-reference
Regulating interfacial hydrogen-bonding networks by implanting Cu sites with perfluorooctane to accelerate CO2 electroreduction to ethanol
10.1002/anie.202418459 · ExternalCitation · doi-reference
Size-adjustable high-entropy alloy nanoparticles as an efficient platform for electrocatalysis
10.1002/anie.202423765 · ExternalCitation · doi-reference
Low-coordination indium single-atom sites anchored on a metal-organic framework single-layer boosts electroreduction of CO2 into formic acid
10.1002/anie.202511132 · ExternalCitation · doi-reference
Screening of various catalysts for electrochemical CO2 reduction at elevated temperatures and pressures
10.1002/ceur.202500223 · ExternalCitation · doi-reference
Revisiting the conformational adsorption of L- and D-cysteine on Au nanoparticles by Raman spectroscopy
10.1002/jrs.5782 · ExternalCitation · doi-reference
Electrochemical carbon dioxide reduction in acidic media
10.1007/s41918-024-00210-3 · ExternalCitation · doi-reference
Emerging atomically precise metal nanoclusters and ultrasmall nanoparticles for efficient electrochemical energy catalysis: synthesis strategies and surface/interface engineering
10.1007/s41918-024-00217-w · ExternalCitation · doi-reference
Address the “alkalinity problem” in CO2 electrolysis with catalyst design and translation
10.1016/j.joule.2021.02.008 · ExternalCitation · doi-reference
Temperature-responsive PLLA/PNIPAM nanofibers for switchable release
10.1016/j.msec.2016.11.028 · ExternalCitation · doi-reference
Organic molecules involved in Cu-based electrocatalysts for selective CO2 reduction to C2+ products
10.1016/j.mtchem.2022.101328 · ExternalCitation · doi-reference
Tandem gold/copper catalysis and morphological tuning via wrinkling to boost CO2 electroreduction into C2+ products
10.1016/j.nanoen.2024.110457 · ExternalCitation · doi-reference
Mitigating carbonate formation in CO2 electrolysis
10.1016/j.nxener.2023.100030 · ExternalCitation · doi-reference
Strategies for efficient CO2 electroreduction in acidic conditions
10.1016/s1872-2067(23)64511-5 · ExternalCitation · doi-reference
CO2 electrolyzers
10.1021/acs.chemrev.3c00206 · ExternalCitation · doi-reference
Cation-dependent interfacial structures and kinetics for outer-sphere electron-transfer reactions
10.1021/acs.jpcc.0c10492 · ExternalCitation · doi-reference
Counterion-tunable thermosensitivity of strong polyelectrolyte brushes
10.1021/acs.langmuir.9b02982 · ExternalCitation · doi-reference
Quantitative understanding of cation effects on the electrochemical reduction of CO2 and H+ in acidic solution
10.1021/acscatal.2c04875 · ExternalCitation · doi-reference
Dynamic Cu0/Cu+ Interface Promotes Acidic CO2 Electroreduction
10.1021/acscatal.4c01516 · ExternalCitation · doi-reference
100th anniversary of macromolecular science viewpoint: poly(N-isopropylacrylamide)-based thermally responsive micelles
10.1021/acsmacrolett.0c00342 · ExternalCitation · doi-reference
Progress and perspective for in situ studies of CO2 reduction
10.1021/jacs.0c02973 · ExternalCitation · doi-reference
Dynamically formed surfactant assembly at the electrified electrode-electrolyte interface boosting CO2 electroreduction
10.1021/jacs.2c02486 · ExternalCitation · doi-reference
NHC-CDI ligands boost multicarbon production in electrocatalytic CO2 reduction by increasing accumulated charged intermediates and promoting *CO dimerization on Cu
10.1021/jacs.3c14306 · ExternalCitation · doi-reference
Electrochemical CO2 reduction in acidic media: a perspective
10.1021/jacs.5c00164 · ExternalCitation · doi-reference
Constructing monolayer Fe clusters as model catalysts for CO2 electroreduction
10.1021/jacs.5c05325 · ExternalCitation · doi-reference
Enhancing CO2 electroreduction to ethylene in acidic solution by optimizing cation configuration on the Cu surface
10.1021/jacs.5c06402 · ExternalCitation · doi-reference
Spectro-electrochemical insights into electrocatalytic CO2 reduction in acidic media through model catalyst design
10.1021/jacs.5c12659 · ExternalCitation · doi-reference
Hydrolysis of electrolyte cations enhances the electrochemical reduction of CO2 over Ag and Cu
10.1021/jacs.6b07612 · ExternalCitation · doi-reference
Collapse and swelling of thermally sensitive poly(N-isopropylacrylamide) brushes monitored with a quartz crystal microbalance
10.1021/jp046903m · ExternalCitation · doi-reference
The future of low-temperature carbon dioxide electrolysis depends on solving one basic problem
10.1038/s41467-020-19135-8 · ExternalCitation · doi-reference
Accelerating electrochemical CO2 reduction to multi-carbon products via asymmetric intermediate binding at confined nanointerfaces
10.1038/s41467-023-36926-x · ExternalCitation · doi-reference
Supported Au single atoms and nanoparticles on MoS2 for highly selective CO2-to-CH3COOH photoreduction
10.1038/s41467-024-52291-9 · ExternalCitation · doi-reference
Hydrogen bond stabilized *CO intermediate enables CO2 electroreduction to multi-electron products on silver catalysts
10.1038/s41467-026-73970-9 · ExternalCitation · doi-reference
In situ probing electrified interfacial water structures at atomically flat surfaces
10.1038/s41563-019-0356-x · ExternalCitation · doi-reference
Efficient CO2-to-methanol electrocatalysis in acidic media via microenvironment-tuned cobalt phthalocyanine
10.1038/s41565-025-02059-z · ExternalCitation · doi-reference
In situ Raman spectroscopy reveals the structure and dissociation of interfacial water
10.1038/s41586-021-04068-z · ExternalCitation · doi-reference
High carbon utilization in CO2 reduction to multi-carbon products in acidic media
10.1038/s41929-022-00788-1 · ExternalCitation · doi-reference
Conversion of CO2 to multicarbon products in strong acid by controlling the catalyst microenvironment
10.1038/s44160-022-00234-x · ExternalCitation · doi-reference
A covalent molecular design enabling efficient CO2 reduction in strong acids
10.1038/s44160-024-00588-4 · ExternalCitation · doi-reference
CO2 reduction in strong acid
10.1038/s44160-024-00608-3 · ExternalCitation · doi-reference
Tailoring acidic microenvironments for carbon-efficient CO2 electrolysis over a Ni-N-C catalyst in a membrane electrode assembly electrolyzer
10.1039/d2ee03482d · ExternalCitation · doi-reference
Review on strategies for improving the added value and expanding the scope of CO2 electroreduction products
10.1039/d3cs00857f · ExternalCitation · doi-reference
Confinement of an alkaline environment for electrocatalytic CO2 reduction in acidic electrolytes
10.1039/d3sc01040f · ExternalCitation · doi-reference
Ampere-level electroreduction of CO2 and CO
10.1039/d4cs00863d · ExternalCitation · doi-reference
Catalyst-electrolyte interface engineering propels progress in acidic CO2 electroreduction
10.1039/d4ee05715e · ExternalCitation · doi-reference
Self-regulated photoresponsive heterogeneous PNIPAM hydrogel actuators
10.1039/d4nr05257a · ExternalCitation · doi-reference
Accelerating acidic CO2 electroreduction: strategies beyond catalysts
10.1039/d4sc04283b · ExternalCitation · doi-reference
Molecular modification enables CO2 electroreduction to methane on platinum surface in acidic media
10.1093/nsr/nwae361 · ExternalCitation · doi-reference
CO2 electrolysis to multicarbon products in strong acid
10.1126/science.abg6582 · ExternalCitation · doi-reference
Acid-humidified CO2 gas input for stable electrochemical CO2 reduction reaction
10.1126/science.adr3834 · ExternalCitation · doi-reference