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architectures and functions, and achieving materials that respond to an external stimulus as commonly occurs in nature. However, the workshop panelists were confident that the challenges confronting carbon capture could be met with fundamental research that takes advantage of recent advances that have been made in synthesis, characterization and computation. Specifically, these challenges will require the use these three capabilities synergistically to observe, understand, predict, and design revolutionary new materials that are specifically tailored for highly efficient separations. The panelists also recognized that these challenges will require the concerted efforts of research teams composed of materials scientists, chemists, physicists, computational scientists, engineers and other disciplines to realize the required breakthroughs. In addition, these efforts will require close collaborations between fundamental science and applied science to provide feedback and guidance to realize the full potential of harnessing the breakthroughs and translating them into large scale carbon capture technologies. Finally, the workshop panelist were highly confident that, with concerted effort, future technologies for dramatically reducing carbon emissions to the environment could be achieved, but noted that this goal will require substantial investment in fundamental research. References 1. Svante Arrhenius, Philosophical Magazine and Journal of Science, Series 5, Vol. 41, pages 237–276 (April 1896), from http://www.rsc.org/images/.Arrhenius1896_tcm18- 173546.pdf. 2. U.S. Energy Information Administration, International Energy Outlook 2010, DOE/EIA- 0484(2010), Department of Energy, July 2010, http://www.eia.doe.gov/oiaf/ieo/index.html. 3. Carbon Dioxide Capture and Storage, IPCC Special Report, eds., B. Metz, O. Davidson, H. de Coninck, and M. L. L. Meyer, Intergovernmental Panel on Climate Change, 2005; http://www.ipcc.ch/pdf/special-reports/srccs/srccs_wholereport.pdf. 119PDF Image | 2020 Carbon Capture
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