Nitrogen and atomic Fe co-doped hollow carbon nanocages supporting RuPd nanoclusters as extraordinary high-performance nanoreactor-like cathode for lithium–oxygen batteries
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S. Liao | Zhiming Cui | Longhai Zhang | Zhangsen Chen | Mingrui Liu | Lulu Huang | Z. Zhang | Lirong Zheng | Qinghua Zhang
[1] Fujun Li,et al. Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries. , 2022, Journal of the American Chemical Society.
[2] Chuankai Fu,et al. Tailoring electronic-ionic local environment for solid-state Li-O2 battery by engineering crystal structure , 2022, Science advances.
[3] Huifeng Li,et al. Theoretical Design and Structural Modulation of a Surface-Functionalized Ti3C2Tx MXene-Based Heterojunction Electrocatalyst for a Li-Oxygen Battery. , 2022, ACS nano.
[4] C. Shu,et al. Interfacial Electron Redistribution of Hydrangea-like NiO@Ni2 P Heterogeneous Microspheres with Dual-Phase Synergy for High-Performance Lithium-Oxygen Battery. , 2022, Small.
[5] Huakun Liu,et al. CoS2 Nanoparticles Anchored on MoS2 Nanorods As a Superior Bifunctional Electrocatalyst Boosting Li2 O2 Heteroepitaxial Growth for Rechargeable Li-O2 Batteries. , 2021, Small.
[6] Linbin Tang,et al. Coupling Water‐Proof Li Anodes with LiOH‐Based Cathodes Enables Highly Rechargeable Lithium–Air Batteries Operating in Ambient Air , 2021, Advanced science.
[7] Yiju Li,et al. Lewis-Acidic PtIr Multipods Enable High-performance Li-O2 Batteries. , 2021, Angewandte Chemie.
[8] Qinghua Zhang,et al. Compressive Strain Modulation of Single Iron Sites on Helical Carbon Support Boosts Electrocatalytic Oxygen Reduction. , 2021, Angewandte Chemie.
[9] Evan C. Wegener,et al. Atomically dispersed single iron sites for promoting Pt and Pt3Co fuel cell catalysts: performance and durability improvements , 2021, Energy & Environmental Science.
[10] Ying Bai,et al. Crystal Phase-Controlled Modulation of Binary Transition Metal Oxides for Highly Reversible Li-O2 Batteries. , 2021, Nano letters.
[11] Li Wang,et al. Implanting cation vacancies in Ni-Fe LDHs for efficient oxygen evolution reactions of lithium-oxygen batteries , 2021 .
[12] Ruizhi Yang,et al. Synergized Multimetal Oxides with Amorphous/Crystalline Heterostructure as Efficient Electrocatalysts for Lithium–Oxygen Batteries , 2021, Advanced Energy Materials.
[13] S. Liao,et al. Integration of single Co atoms and Ru nanoclusters boosts the cathodic performance of nitrogen-doped 3D graphene in lithium–oxygen batteries , 2021 .
[14] Gang Chen,et al. Tuning the structure and morphology of Li2O2 by controlling the crystallinity of catalysts for Li-O2 batteries , 2021 .
[15] Hui Tong,et al. MoSe2@CNT Core–Shell Nanostructures as Grain Promoters Featuring a Direct Li2O2 Formation/Decomposition Catalytic Capability in Lithium‐Oxygen Batteries , 2021, Advanced Energy Materials.
[16] Xin-bo Zhang,et al. Lithium-Air Batteries: Air-Electrochemistry and Anode Stabilization. , 2021, Accounts of chemical research.
[17] S. Liao,et al. Yucca-like CoO–CoN Nanoarray with Abundant Oxygen Vacancies as a High-Performance Cathode for Lithium–Oxygen Batteries , 2020 .
[18] Mingzhen Wang,et al. Electronic structure control over Pd nanorods by B, P-co-doping enables enhanced electrocatalytic performance , 2020 .
[19] X. Ren,et al. Efficient Production of Nitrones via One-Pot Reductive Coupling Reactions Using Bimetallic RuPt NPs , 2020 .
[20] Chaohe Xu,et al. Ru Single-Atoms on N-Doped Carbon by Spatial Confinement and Ionic Substitution Strategies for High-Performance Li-O2 Batteries. , 2020, Journal of the American Chemical Society.
[21] Jihong Yu,et al. Porous Materials Applied in Nonaqueous Li–O2 Batteries: Status and Perspectives , 2020, Advanced materials.
[22] S. Liao,et al. In-situ grown vanadium nitride coated with thin layer of nitrogen-doped carbon as a highly durable binder-free cathode for Li–O2 batteries , 2020, Journal of Power Sources.
[23] Jijing Xu,et al. Tuning lithium-peroxide formation and decomposition routes with single-atom catalysts for lithium–oxygen batteries , 2020, Nature Communications.
[24] Zhiwei Zhang,et al. Atomically dispersed cobalt catalyst anchored on nitrogen-doped carbon nanosheets for lithium-oxygen batteries , 2020, Nature Communications.
[25] Jinsong Hu,et al. Rationally Designed Three-Dimensional N-Doped Graphene Architecture Mounted with Ru Nanoclusters as a High-Performance Air Cathode for Lithium–Oxygen Batteries , 2020 .
[26] Rosy,et al. Lithium-Oxygen Batteries and Related Systems: Potential, Status, and Future. , 2020, Chemical reviews.
[27] C. Grey,et al. Current Challenges and Routes Forward for Nonaqueous Lithium-Air Batteries. , 2020, Chemical reviews.
[28] Xizhang Wang,et al. The simplest construction of single-site catalysts by the synergism of micropore trapping and nitrogen anchoring , 2019, Nature Communications.
[29] Xien Liu,et al. Atomic Fe Dispersed on N‐Doped Carbon Hollow Nanospheres for High‐Efficiency Electrocatalytic Oxygen Reduction , 2018, Advanced materials.
[30] M. Guo,et al. Highly Active and Selective RuPd Bimetallic NPs for the Cleavage of the Diphenyl Ether C–O Bond , 2018, ACS Catalysis.
[31] S. Cai,et al. A Synergistic Catalytic Mechanism for Oxygen Evolution Reaction in Aprotic Li–O2 Battery , 2018, ACS Catalysis.
[32] S. Cai,et al. An Open‐Structured Matrix as Oxygen Cathode with High Catalytic Activity and Large Li2O2 Accommodations for Lithium–Oxygen Batteries , 2018 .
[33] J. Xie,et al. Mechanistic insight into the synergetic catalytic effect of Pd and MnO 2 for high-performance Li–O 2 cells , 2018 .
[34] Xuan Hu,et al. A lithium–oxygen battery with a long cycle life in an air-like atmosphere , 2018, Nature.
[35] Y. Kang,et al. Hierarchical hollow microspheres grafted with Co nanoparticle-embedded bamboo-like N-doped carbon nanotube bundles as ultrahigh rate and long-life cathodes for rechargeable lithium-oxygen batteries , 2018 .
[36] Yousung Jung,et al. Nanostructuring one-dimensional and amorphous lithium peroxide for high round-trip efficiency in lithium-oxygen batteries , 2018, Nature Communications.
[37] Anna M. Wise,et al. Inhibitive effect of Pt on Pd-hydride formation of Pd@Pt core-shell electrocatalysts: An in situ EXAFS and XRD study , 2018 .
[38] Junwei Lang,et al. Realizing the Embedded Growth of Large Li2O2 Aggregations by Matching Different Metal Oxides for High‐Capacity and High‐Rate Lithium Oxygen Batteries , 2017, Advanced science.
[39] Dean J. Miller,et al. Toward Highly Efficient Electrocatalyst for Li-O2 Batteries Using Biphasic N-Doping Cobalt@Graphene Multiple-Capsule Heterostructures. , 2017, Nano letters.
[40] Qian Sun,et al. A bifunctional solid state catalyst with enhanced cycling stability for Na and Li–O2 cells: revealing the role of solid state catalysts , 2017 .
[41] David G. Kwabi,et al. Mechanism of Oxygen Reduction in Aprotic Li–Air Batteries: The Role of Carbon Electrode Surface Structure , 2017 .
[42] Xin-bo Zhang,et al. Cathode Surface‐Induced, Solvation‐Mediated, Micrometer‐Sized Li2O2 Cycling for Li–O2 Batteries , 2016, Advanced materials.
[43] Joonhee Kang,et al. First-Principles Design of Graphene-Based Active Catalysts for Oxygen Reduction and Evolution Reactions in the Aprotic Li-O2 Battery. , 2016, The journal of physical chemistry letters.
[44] G. Hutchings,et al. Palladium-tin catalysts for the direct synthesis of H2O2 with high selectivity , 2016, Science.
[45] B. McCloskey,et al. On the Origin and Implications of Li$_2$O$_2$ Toroid Formation in Nonaqueous Li-O$_2$ Batteries , 2014, 1406.3335.
[46] M. Balasubramanian,et al. Fe/N/C composite in Li-O2 battery: studies of catalytic structure and activity toward oxygen evolution reaction. , 2012, Journal of the American Chemical Society.
[47] J. Nørskov,et al. Communications: Elementary oxygen electrode reactions in the aprotic Li-air battery. , 2010, The Journal of chemical physics.
[48] Frédéric Jaouen,et al. Iron-Based Catalysts with Improved Oxygen Reduction Activity in Polymer Electrolyte Fuel Cells , 2009, Science.
[49] Christopher D. Taylor,et al. Calculated phase diagrams for the electrochemical oxidation and reduction of water over Pt(111). , 2006, The journal of physical chemistry. B.
[50] Kresse,et al. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. , 1996, Physical review. B, Condensed matter.
[51] Lirong Zheng,et al. Single‐Atom to Single‐Atom Grafting of Pt1 onto FeN4 Center: Pt1@FeNC Multifunctional Electrocatalyst with Significantly Enhanced Properties , 2018 .