Atomically dispersed Ru oxide catalyst with lattice oxygen participation for efficient acidic water oxidation
暂无分享,去创建一个
H. Cong | Wei Luo | Na Yao | Zhaoping Shi | Juan Zhu | J. Ge | Hongnan Jia | Wei Luo
[1] Yan‐Bing He,et al. RuO2 electronic structure and lattice strain dual engineering for enhanced acidic oxygen evolution reaction performance , 2022, Nature Communications.
[2] Yadong Li,et al. Ru-Co Pair Sites Catalyst Boosts the Energetics for Oxygen Evolution Reaction. , 2022, Angewandte Chemie.
[3] Licheng Sun,et al. Triggering Lattice Oxygen Activation of Single‐Atomic Mo Sites Anchored on Ni–Fe Oxyhydroxides Nanoarrays for Electrochemical Water Oxidation , 2022, Advanced materials.
[4] R. Schlögl,et al. In Situ Identification and Time-Resolved Observation of the Interfacial State and Reactive Intermediates on a Cobalt Oxide Nanocatalyst for the Oxygen Evolution Reaction , 2022, ACS Catalysis.
[5] D. Zhao,et al. Superassembly of Surface-Enriched Ru Nanoclusters from Trapping-Bonding Strategy for Efficient Hydrogen Evolution. , 2022, ACS nano.
[6] R. Amal,et al. Electronic Structure Engineering of Single‐Atom Ru Sites via Co–N4 Sites for Bifunctional pH‐Universal Water Splitting , 2022, Advanced materials.
[7] Shengli Chen,et al. A potential-driven switch of activity promotion mode for the oxygen evolution reaction at Co3O4/NiOxHy interface , 2022, eScience.
[8] Qinghua Zhang,et al. Exceptionally active and stable RuO2 with interstitial carbon for water oxidation in acid , 2022, Chem.
[9] Jianbo Wu,et al. Single-site Pt-doped RuO2 hollow nanospheres with interstitial C for high-performance acidic overall water splitting , 2022, Science advances.
[10] Yifu Yu,et al. Structurally disordered RuO2 nanosheets with rich oxygen vacancies for enhanced nitrate electroreduction to ammonia. , 2022, Angewandte Chemie.
[11] Wei Zhou,et al. Phenanthrenequinone-like moiety functionalized carbon for electrocatalytic acidic oxygen evolution , 2022, Chem.
[12] Shengli Chen,et al. Intermolecular Energy Gap-Induced Formation of High-Valent Cobalt Species in CoOOH Surface Layer on Cobalt Sulfides for Efficient Water Oxidation. , 2022, Angewandte Chemie.
[13] Qinghua Liu,et al. Platinum single-atom catalyst with self-adjustable valence state for large-current-density acidic water oxidation , 2021, eScience.
[14] Yadong Li,et al. Cobalt Single Atom Incorporated in Ruthenium Oxide Sphere: A Robust Bifunctional Electrocatalyst for HER and OER. , 2021, Angewandte Chemie.
[15] Licheng Sun,et al. Engineering lattice oxygen activation of iridium clusters stabilized on amorphous bimetal borides array for oxygen evolution reaction. , 2021, Angewandte Chemie.
[16] Lun Pan,et al. NiCo-Based Electrocatalysts for the Alkaline Oxygen Evolution Reaction: A Review , 2021, ACS Catalysis.
[17] Changpeng Liu,et al. Confined Ir single sites with triggered lattice oxygen redox: Toward boosted and sustained water oxidation catalysis , 2021, Joule.
[18] Y. Chai,et al. Lattice oxygen redox chemistry in solid-state electrocatalysts for water oxidation , 2021, Energy & Environmental Science.
[19] Haotian Wang,et al. Stability challenges of electrocatalytic oxygen evolution reaction: From mechanistic understanding to reactor design , 2021, Joule.
[20] Zhichuan J. Xu,et al. Recent Development of Oxygen Evolution Electrocatalysts in Acidic Environment , 2021, Advanced materials.
[21] Qi Shao,et al. Recent Progress in Advanced Electrocatalyst Design for Acidic Oxygen Evolution Reaction , 2021, Advanced materials.
[22] Licheng Sun,et al. Metal-organic frameworks and their derivatives as electrocatalysts for the oxygen evolution reaction. , 2021, Chemical Society reviews.
[23] Hao Ming Chen,et al. Tracking high-valent surface iron species in the oxygen evolution reaction on cobalt iron (oxy)hydroxides , 2021, Energy & Environmental Science.
[24] Yousung Jung,et al. Safeguarding RuO2 phase against lattice oxygen oxidation during acidic water electrooxidation , 2021, Energy & Environmental Science.
[25] Hui Li,et al. Boosting the oxygen evolution reaction using defect-rich ultra-thin ruthenium oxide nanosheets in acidic media , 2020 .
[26] Junjie Pan,et al. Dopants fixation of Ruthenium for boosting acidic oxygen evolution stability and activity , 2020, Nature Communications.
[27] Jonathan Hwang,et al. Operando identification of site-dependent water oxidation activity on ruthenium dioxide single-crystal surfaces , 2020, Nature Catalysis.
[28] Zhichuan J. Xu,et al. A review on fundamentals for designing oxygen evolution electrocatalysts. , 2020, Chemical Society reviews.
[29] V. Alexandrov,et al. Role of Defects in the Interplay between Adsorbate Evolving and Lattice Oxygen Mechanisms of the Oxygen Evolution Reaction in RuO2 and IrO2 , 2020 .
[30] Sung-Yoon Chung,et al. Dissolution-Induced Surface Roughening and Oxygen Evolution Electrocatalysis of Alkaline-Earth Iridates in Acid , 2019, Chem.
[31] Jinlong Yang,et al. Unconventional p-d Hybridization Interaction in PtGa Ultrathin Nanowires Boosts Oxygen Reduction Electrocatalysis. , 2019, Journal of the American Chemical Society.
[32] Shengli Chen,et al. Boosting Hydrogen Oxidation Activity of Ni in Alkaline Media through Oxygen Vacancy-Rich CeO2/Ni Heterostructures. , 2019, Angewandte Chemie.
[33] Jun Luo,et al. Intermediate Modulation on Noble Metal Hybridized to 2D Metal-Organic Framework for Accelerated Water Electrocatalysis , 2019, Chem.
[34] Chengzhou Zhu,et al. Robust noble metal-based electrocatalysts for oxygen evolution reaction. , 2019, Chemical Society reviews.
[35] V. Valtchev,et al. Chemically stable polyarylether-based covalent organic frameworks , 2019, Nature Chemistry.
[36] Zhichuan J. Xu,et al. Chemical and structural origin of lattice oxygen oxidation in Co–Zn oxyhydroxide oxygen evolution electrocatalysts , 2019, Nature Energy.
[37] M. Jaroniec,et al. Charge-Redistribution-Enhanced Nanocrystalline Ru@IrOx Electrocatalysts for Oxygen Evolution in Acidic Media , 2019, Chem.
[38] Wei Che,et al. Lattice-strained metal–organic-framework arrays for bifunctional oxygen electrocatalysis , 2019, Nature Energy.
[39] Jean-Marie Tarascon,et al. Fundamental understanding and practical challenges of anionic redox activity in Li-ion batteries , 2018 .
[40] K. Uosaki,et al. Quantum-to-Classical Transition of Proton Transfer in Potential-Induced Dioxygen Reduction. , 2018, Physical review letters.
[41] B. Yeo,et al. Characterization of Electrocatalytic Water Splitting and CO2 Reduction Reactions Using In Situ/Operando Raman Spectroscopy , 2017 .
[42] A. Kucernak,et al. Kinetic isotope effect in the oxygen reduction reaction (ORR) over Fe-N/C catalysts under acidic and alkaline conditions. , 2017 .
[43] Colin F. Dickens,et al. A Theoretical Investigation into the Role of Surface Defects for Oxygen Evolution on RuO2 , 2017 .
[44] Hong Yang,et al. High-Performance Pyrochlore-Type Yttrium Ruthenate Electrocatalyst for Oxygen Evolution Reaction in Acidic Media. , 2017, Journal of the American Chemical Society.
[45] A. Grimaud,et al. Chemical Recognition of Active Oxygen Species on the Surface of Oxygen Evolution Reaction Electrocatalysts , 2017, Angewandte Chemie.
[46] Colin F. Dickens,et al. Combining theory and experiment in electrocatalysis: Insights into materials design , 2017, Science.
[47] Joseph H. Montoya,et al. A highly active and stable IrOx/SrIrO3 catalyst for the oxygen evolution reaction , 2016, Science.
[48] T. Napporn,et al. Effect of Adding CeO2 to RuO2–IrO2 Mixed Nanocatalysts: Activity towards the Oxygen Evolution Reaction and Stability in Acidic Media , 2015 .
[49] Moreno de Respinis,et al. Time-resolved observations of water oxidation intermediates on a cobalt oxide nanoparticle catalyst. , 2014, Nature chemistry.
[50] Kyoung-Shin Choi,et al. Nanoporous BiVO4 Photoanodes with Dual-Layer Oxygen Evolution Catalysts for Solar Water Splitting , 2014, Science.
[51] Javier J. Concepcion,et al. Understanding the electronic structure of 4d metal complexes: from molecular spinors to L-edge spectra of a di-Ru catalyst. , 2011, Journal of the American Chemical Society.
[52] A. K. Subramani,et al. Identifying Defects in Ceria-Based Nanocrystals by UV Resonance Raman Spectroscopy , 2009 .
[53] D. Petering,et al. Resonance Raman Studies of HOO−Co(III)Bleomycin and Co(III)Bleomycin: Identification of Two Important Vibrational Modes, ν(Co−OOH) and ν(O−OH) , 2004 .
[54] A. Krężel,et al. A formula for correlating pKa values determined in D2O and H2O. , 2004, Journal of inorganic biochemistry.
[55] Michele L. Anderson,et al. Electronic connection to the interior of a mesoporous insulator with nanowires of crystalline RuO2 , 2000, Nature.
[56] Morikawa,et al. CO chemisorption at metal surfaces and overlayers. , 1996, Physical review letters.