Active sites engineering leads to exceptional ORR and OER bifunctionality in P,N Co-doped graphene frameworks
暂无分享,去创建一个
Maria-Magdalena Titirici | Zhengxiao Guo | M. Titirici | C. Shang | Zhengxiao Guo | Guoliang Chai | Guo-Liang Chai | Kaipei Qiu | Mo Qiao | CX Shang | K. Qiu | Mo Qiao
[1] Michiel Sprik,et al. Free energy from constrained molecular dynamics , 1998 .
[2] Meilin Liu,et al. Simple preparation of nanoporous few-layer nitrogen-doped graphene for use as an efficient electrocatalyst for oxygen reduction and oxygen evolution reactions , 2013 .
[3] Jiaqi Huang,et al. Toward Full Exposure of “Active Sites”: Nanocarbon Electrocatalyst with Surface Enriched Nitrogen for Superior Oxygen Reduction and Evolution Reactivity , 2014 .
[4] P. Strasser,et al. An efficient bifunctional two-component catalyst for oxygen reduction and oxygen evolution in reversible fuel cells, electrolyzers and rechargeable air electrodes , 2016 .
[5] Stefano de Gironcoli,et al. QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.
[6] Yanglong Hou,et al. Synthesis of Phosphorus‐Doped Graphene and its Multifunctional Applications for Oxygen Reduction Reaction and Lithium Ion Batteries , 2013, Advanced materials.
[7] Z. Hou,et al. Active sites and mechanisms for oxygen reduction reaction on nitrogen-doped carbon alloy catalysts: Stone-Wales defect and curvature effect. , 2014, Journal of the American Chemical Society.
[8] Jan Rossmeisl,et al. Density functional studies of functionalized graphitic materials with late transition metals for Oxygen Reduction Reactions. , 2011, Physical chemistry chemical physics : PCCP.
[9] Qiang Zhang,et al. Graphene/nitrogen-doped porous carbon sandwiches for the metal-free oxygen reduction reaction: conductivity versus active sites , 2016 .
[10] Dingshan Yu,et al. Nitrogen-doped graphene/carbon nanotube hybrids: in situ formation on bifunctional catalysts and their superior electrocatalytic activity for oxygen evolution/reduction reaction. , 2014, Small.
[11] Michele Parrinello,et al. The Gaussian and augmented-plane-wave density functional method for ab initio molecular dynamics simulations , 1999 .
[12] L. Dai,et al. Nitrogen, Phosphorus, and Fluorine Tri-doped Graphene as a Multifunctional Catalyst for Self-Powered Electrochemical Water Splitting. , 2016, Angewandte Chemie.
[13] Ying Zhu,et al. Metal-free porous nitrogen-doped carbon nanotubes for enhanced oxygen reduction and evolution reactions , 2016 .
[14] F. Du,et al. Nitrogen-Doped Carbon Nanotube Arrays with High Electrocatalytic Activity for Oxygen Reduction , 2009, Science.
[15] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode , 2004 .
[16] Michiel Sprik,et al. Ab initio molecular dynamics simulation of liquid water: Comparison of three gradient‐corrected density functionals , 1996 .
[17] Y. Jiao,et al. Polydopamine‐Inspired, Dual Heteroatom‐Doped Carbon Nanotubes for Highly Efficient Overall Water Splitting , 2017 .
[18] Car,et al. Unified approach for molecular dynamics and density-functional theory. , 1985, Physical review letters.
[19] Jun Jin,et al. Nitrogen-doped mesoporous carbon nanosheet/carbon nanotube hybrids as metal-free bi-functional electrocatalysts for water oxidation and oxygen reduction , 2016 .
[20] Fred A. Hamprecht,et al. Development and assessment of new exchange-correlation functionals , 1998 .
[21] D. Bhattacharjya,et al. Phosphorus-doped ordered mesoporous carbons with different lengths as efficient metal-free electrocatalysts for oxygen reduction reaction in alkaline media. , 2012, Journal of the American Chemical Society.
[22] Z. Ren,et al. Efficient solar water-splitting using a nanocrystalline CoO photocatalyst. , 2014, Nature nanotechnology.
[23] Yaobing Wang,et al. Scalable Fabrication of Nanoporous Carbon Fiber Films as Bifunctional Catalytic Electrodes for Flexible Zn‐Air Batteries , 2016, Advanced materials.
[24] Y. Shao-horn,et al. Synthesis and Activities of Rutile IrO2 and RuO2 Nanoparticles for Oxygen Evolution in Acid and Alkaline Solutions. , 2012, The journal of physical chemistry letters.
[25] I-Wei Chen,et al. Nitrogen-doped mesoporous carbon of extraordinary capacitance for electrochemical energy storage , 2015, Science.
[26] Yuxin Wang,et al. Pyrolyzed egg yolk as an efficient bifunctional electrocatalyst for oxygen reduction and evolution reactions , 2015 .
[27] B. Steele,et al. Materials for fuel-cell technologies , 2001, Nature.
[28] J. Goodenough,et al. Design principles for oxygen-reduction activity on perovskite oxide catalysts for fuel cells and metal-air batteries. , 2011, Nature chemistry.
[29] Zhengxiao Guo,et al. Highly Efficient Oxygen Reduction Catalysts by Rational Synthesis of Nanoconfined Maghemite in a Nitrogen-Doped Graphene Framework , 2016 .
[30] Xinglong Gou,et al. Nitrogen and Phosphorus Dual-Doped Graphene/Carbon Nanosheets as Bifunctional Electrocatalysts for Oxygen Reduction and Evolution , 2015 .
[31] Martins,et al. Efficient pseudopotentials for plane-wave calculations. , 1991, Physical review. B, Condensed matter.
[32] Xin Wang,et al. A metal–organic framework-derived bifunctional oxygen electrocatalyst , 2016, Nature Energy.
[33] A S Bondarenko,et al. Alloys of platinum and early transition metals as oxygen reduction electrocatalysts. , 2009, Nature chemistry.
[34] L. Dai,et al. Carbon-Based Metal Free Catalysts , 2016 .
[35] Tingzheng Hou,et al. Topological Defects in Metal‐Free Nanocarbon for Oxygen Electrocatalysis , 2016, Advanced materials.
[36] Zhengxiao Guo,et al. Hierarchically porous graphene sheets and graphitic carbon nitride intercalated composites for enhanced oxygen reduction reaction , 2014 .
[37] Y. Jiao,et al. Activity origin and catalyst design principles for electrocatalytic hydrogen evolution on heteroatom-doped graphene , 2016, Nature Energy.
[38] Frédéric Jaouen,et al. Identification of catalytic sites for oxygen reduction in iron- and nitrogen-doped graphene materials. , 2015, Nature materials.
[39] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[40] X. Duan,et al. High-performance transition metal–doped Pt3Ni octahedra for oxygen reduction reaction , 2015, Science.
[41] J. Erlebacher,et al. Oxygen reduction in nanoporous metal-ionic liquid composite electrocatalysts. , 2010, Nature materials.
[42] J. Nørskov,et al. Towards the computational design of solid catalysts. , 2009, Nature chemistry.
[43] Shungui Zhou,et al. Nitrogen-doped carbon sheets derived from chitin as non-metal bifunctional electrocatalysts for oxygen reduction and evolution , 2015 .
[44] M. Kakimoto,et al. Theoretical characterization of X-ray absorption, emission, and photoelectron spectra of nitrogen doped along graphene edges. , 2013, The journal of physical chemistry. A.
[45] P. Ajayan,et al. Carbon Nitrogen Nanotubes as Efficient Bifunctional Electrocatalysts for Oxygen Reduction and Evolution Reactions. , 2015, ACS applied materials & interfaces.
[46] Frédéric Jaouen,et al. Iron-Based Catalysts with Improved Oxygen Reduction Activity in Polymer Electrolyte Fuel Cells , 2009, Science.