Discovery of true electrochemical reactions for ultrahigh catalyst mass activity in water splitting
暂无分享,去创建一个
Todd J. Toops | S. Retterer | M. Mench | D. Cullen | Feng-Yuan Zhang | Jingke Mo | Johney B Green | Z. Kang | Johney B. Green | Johney Green | Feng‐Yuan Zhang | T. Toops
[1] Todd J. Toops,et al. Thin liquid/gas diffusion layers for high-efficiency hydrogen production from water splitting , 2016 .
[2] K. Ayers,et al. Pathways to ultra-low platinum group metal catalyst loading in proton exchange membrane electrolyzers , 2016 .
[3] Nathan S Lewis,et al. Research opportunities to advance solar energy utilization , 2016, Science.
[4] Todd J. Toops,et al. Electrochemical investigation of stainless steel corrosion in a proton exchange membrane electrolyzer cell , 2015 .
[5] Scott T. Retterer,et al. Mask-Patterned Wet Etching of Thin Titanium Liquid/Gas Diffusion Layers for a PEMEC , 2015 .
[6] M. Chi,et al. Platinum-based nanocages with subnanometer-thick walls and well-defined, controllable facets , 2015, Science.
[7] Jingke Mo,et al. Electrochemical performance modeling of a proton exchange membrane electrolyzer cell for hydrogen energy , 2015 .
[8] Jianglan Shui,et al. N-doped carbon nanomaterials are durable catalysts for oxygen reduction reaction in acidic fuel cells , 2015, Science Advances.
[9] Feng-Yuan Zhang,et al. Evaluation of nitrided titanium separator plates for proton exchange membrane electrolyzer cells , 2014 .
[10] Leroy Cronin,et al. Decoupled catalytic hydrogen evolution from a molecular metal oxide redox mediator in water splitting , 2014, Science.
[11] J. Turner. A Nickel Finish Protects Silicon Photoanodes for Water Splitting , 2013, Science.
[12] D. Stolten,et al. A comprehensive review on PEM water electrolysis , 2013 .
[13] E. Slavcheva,et al. Oxygen evolution on Ebonex-supported Pt-based binary compounds in PEM water electrolysis , 2012 .
[14] Jingguang G. Chen,et al. A new class of electrocatalysts for hydrogen production from water electrolysis: metal monolayers supported on low-cost transition metal carbides. , 2012, Journal of the American Chemical Society.
[15] Hubert A. Gasteiger,et al. A Perovskite Oxide Optimized for Oxygen Evolution Catalysis from Molecular Orbital Principles. , 2012 .
[16] Jingguang G. Chen,et al. A new class of electrocatalysts for hydrogen production from water electrolysis: metal monolayers supported on low-cost transition metal carbides. , 2012, Journal of the American Chemical Society.
[17] S. Basu,et al. Performance of a high temperature polymer electrolyte membrane water electrolyser , 2011 .
[18] Everett B. Anderson,et al. Initial Performance and Durability of Ultra-Low Loaded NSTF Electrodes for PEM Electrolyzers , 2011 .
[19] J. Goodenough,et al. Design principles for oxygen-reduction activity on perovskite oxide catalysts for fuel cells and metal-air batteries. , 2011, Nature chemistry.
[20] Jincan Chen,et al. Evaluation and calculation on the efficiency of a water electrolysis system for hydrogen production , 2010 .
[21] S. Sunde,et al. Materials for Electrocatalysis of Oxygen Evolution Process in PEM Water Electrolysis Cells , 2010 .
[22] P. D. Tran,et al. From Hydrogenases to Noble Metal–Free Catalytic Nanomaterials for H2 Production and Uptake , 2009, Science.
[23] H. Gasteiger,et al. Just a Dream—or Future Reality? , 2009, Science.
[24] F. Du,et al. Nitrogen-Doped Carbon Nanotube Arrays with High Electrocatalytic Activity for Oxygen Reduction , 2009, Science.
[25] Y. Zhai,et al. Investigations on high performance proton exchange membrane water electrolyzer , 2009 .
[26] B. Yi,et al. Electrochemical investigation of electrocatalysts for the oxygen evolution reaction in PEM water electrolyzers , 2008 .
[27] Suresh G. Advani,et al. Performance of a metallic gas diffusion layer for PEM fuel cells , 2008 .
[28] Matthew M. Mench,et al. Fuel Cell Engines , 2008 .
[29] Suresh G. Advani,et al. In Situ Characterization of the Catalyst Layer in a Polymer Electrolyte Membrane Fuel Cell , 2007 .
[30] A. Marshall,et al. Hydrogen production by advanced proton exchange membrane (PEM) water electrolysers—Reduced energy consumption by improved electrocatalysis , 2007 .
[31] Suresh G. Advani,et al. Institute of Physics Publishing Journal of Micromechanics and Microengineering Investigation of a Copper Etching Technique to Fabricate Metallic Gas Diffusion Media , 2022 .
[32] N. Lewis,et al. Powering the planet: Chemical challenges in solar energy utilization , 2006, Proceedings of the National Academy of Sciences.
[33] S. Grigoriev,et al. Pure hydrogen production by PEM electrolysis for hydrogen energy , 2006 .
[34] Feng-Yuan Zhang,et al. Liquid Water Removal from a Polymer Electrolyte Fuel Cell , 2006 .
[35] F. Barbir. PEM electrolysis for production of hydrogen from renewable energy sources , 2005 .
[36] Jingguang G. Chen,et al. Surface chemistry of transition metal carbides. , 2005, Chemical reviews.
[37] Chaoyang Wang,et al. Visualization of Liquid Water Transport in a PEFC , 2004 .
[38] John A. Turner,et al. Sustainable Hydrogen Production , 2004, Science.
[39] Fritz B. Prinz,et al. The Air'Platinum'Nafion Triple-Phase Boundary: Characteristics, Scaling, and Implications for Fuel Cells , 2004 .
[40] Geping Yin,et al. Effective protonic and electronic conductivity of the catalyst layers in proton exchange membrane fuel cells , 2004 .
[41] Atul K. Jain,et al. Stability: Energy for a Greenhouse Planet Advanced Technology Paths to Global Climate , 2008 .
[42] John A. Turner,et al. High-efficiency integrated multijunction photovoltaic/electrolysis systems for hydrogen production , 2001 .
[43] Turner,et al. A realizable renewable energy future , 1999, Science.
[44] Frano Barbir,et al. Solar-hydrogen energy system : The choice of the future , 1991 .
[45] Michael B. Cutlip,et al. Voltage Losses in Fuel Cell Cathodes , 1980 .
[46] F J Salzano,et al. Hydrogen: Its Future Role in the Nation's Energy Economy , 1973, Science.
[47] H. Morgan. The Choice for the Future , 1964 .