Assessing Economic Modulation of Future Critical Materials Use: The Case of Automotive-Related Platinum Group Metals.
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Randolph Kirchain | Richard Roth | Timothy J. Wallington | Frank R. Field | Jingshu Zhang | Mark P. Everson | T. Wallington | F. Field | R. Roth | R. Kirchain | M. Everson | Jingshu Zhang
[1] G. Graham,et al. Development of PGM-free catalysts for automotive applications , 2008 .
[2] M. Twigg. Progress and future challenges in controlling automotive exhaust gas emissions , 2007 .
[3] Peter Ryan,et al. Materials flow of platinum group metals in Germany , 2009 .
[4] Mehrdad Ahmadinejad,et al. Modeling of Non-Road Diesel Exhaust Aftertreatment Systems: Diesel Oxidation and Selective Catalytic Reduction Catalysts , 2010 .
[5] Stefan Bringezu,et al. Platinum Group Metal Flows of Europe, Part 1 , 2008 .
[6] J. Theis,et al. The effects of high temperature lean exposure on the subsequent HC conversion of automotive catalysts , 2012 .
[7] O Deutschmann,et al. Detailed surface reaction mechanism in a three-way catalyst. , 2001, Faraday discussions.
[8] Wei Li,et al. The Effect of Pt-Pd Ratio on Oxidation Catalysts Under Simulated Diesel Exhaust , 2011 .
[9] N. T. Nassar. CHAPTER 7:Anthropospheric Losses of Platinum Group Elements , 2013 .
[10] Allison DenBleyker,et al. Effects of light duty gasoline vehicle emission standards in the United States on ozone and particulate matter , 2012 .
[11] E. Tronconi,et al. A comparative study of the NH3-SCR reactions over a Cu-zeolite and a Fe-zeolite catalyst , 2010 .
[12] Nedal T. Nassar,et al. Limitations to elemental substitution as exemplified by the platinum-group metals , 2015 .
[13] G. Mudd. Sustainability reporting and the platinum group metals: A global mining industry leader? , 2012 .
[14] T. Kinnunen,et al. Pt/Pd Diesel Oxidation Catalyst : A Study on the Properties Enhanced by the Use of Pd , 2009 .
[15] Robert Walter McCabe,et al. Laboratory and Vehicle Demonstration of “2nd-Generation” LNT + in-situ SCR Diesel Emission Control Systems , 2011 .
[16] J. Theis,et al. The Effects of Sulfur Poisoning and Desulfation Temperature on the NOx Conversion of LNT+SCR Systems for Diesel Applications , 2010 .
[17] A. Elshkaki,et al. An analysis of future platinum resources, emissions and waste streams using a system dynamic model of its intentional and non-intentional flows and stocks , 2013 .
[18] T. Graedel,et al. Metal stocks and sustainability , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[19] James W. Girard,et al. Combined Fe-Cu SCR Systems with Optimized Ammonia to NOx Ratio for Diesel NOx Control , 2008 .
[20] Development of Advanced and Low PGM TWC System for LEV2 PZ EV and LEV3 SULEV30 , 2012 .
[21] A. J. Haagen-Smit. Chemistry and Physiology of Los Angeles Smog , 1952 .
[22] Martin Votsmeier,et al. The Second Generation of Catalyzed Diesel Particulate Filter Systems for Passenger Cars - Particulate Filters with Integrated Oxidation Catalyst Function- , 2005 .
[23] Elisa Alonso,et al. Platinum availability for future automotive technologies. , 2012, Environmental science & technology.
[24] Mark Z. Jacobson,et al. Providing all global energy with wind, water, and solar power, Part I: Technologies, energy resources, quantities and areas of infrastructure, and materials , 2011 .
[26] Zissis Samaras,et al. Optimization Methodologies for DPF Substrate-catalyst Combinations , 2009 .
[27] Gregory A. Keoleian,et al. A Constraint for Electric Vehicles , 2011 .
[28] Z. Samaras,et al. Performance of Catalyzed Particulate Filters without Upstream Oxidation Catalyst , 2005 .
[29] Manbae Han,et al. Characterization of heat-up diesel oxidation catalysts through gas flow reactor and in-situ engine testing , 2008 .
[30] S. Bringezu,et al. Platinum Group Metal Flows of Europe, Part II , 2009 .
[31] J. Hangas,et al. Comparative Analytical Study of Two Pt–Rh Three-way Catalysts , 2006 .
[32] A Paul Alivisatos,et al. Materials availability expands the opportunity for large-scale photovoltaics deployment. , 2009, Environmental science & technology.
[33] Stephan Eckhoff,et al. Cost and Fuel Economy Driven Aftertreatment Solutions -for Lean GDI- , 2010 .
[34] J. Tilton,et al. Using the cumulative availability curve to assess the threat of mineral depletion: The case of lithium , 2009 .
[35] M. Zammit,et al. The Effects of Catalytic Converter Location and Palladium Loading on Tailpipe Emissions , 2012 .
[36] Darrell Morris,et al. Development of Advanced Three-Way Catalysts that Enable Low PGM Loadings for Future Mercosur Emissions Legislation , 2002 .
[37] M. Delucchi,et al. The impact of widespread deployment of fuel cell vehicles on platinum demand and price , 2011 .
[38] Michele L. Bustamante,et al. Challenges in assessment of clean energy supply-chains based on byproduct minerals: A case study of tellurium use in thin film photovoltaics , 2014 .
[39] Marcus Pfeifer,et al. On the Development of Low PGM Content Direct Soot Combustion Catalysts for Diesel Particulate Filters , 2010 .
[40] Yoshihiro Adachi,et al. Recycling Potential of Platinum Group Metals in Japan , 2010 .
[41] G. Keoleian,et al. Global Lithium Availability , 2011 .
[42] Timothy J. Wallington,et al. Automotive Fuels and Internal Combustion Engines: A Chemical Perspective , 2006 .
[44] D. Wilburn,et al. Platinum-group metals--world supply and demand , 2005 .
[45] Chi-Jen Yang. An impending platinum crisis and its implications for the future of the automobile , 2009 .
[46] Paolo Fornasiero,et al. Automotive catalytic converters: current status and some perspectives , 2003 .
[47] T. Johnson. Review of Diesel Emissions and Control , 2010 .
[48] Markus Pfeifer,et al. New Platinum/Palladium Based Catalyzed Filter Technologies for Future Passenger Car Applications , 2007 .
[49] T. Graedel,et al. Anthropogenic cycles of the elements: a critical review. , 2012, Environmental science & technology.
[50] Callie W. Babbitt,et al. A future perspective on lithium-ion battery waste flows from electric vehicles , 2014 .