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Titlebook: REWAS 2016; Towards Materials Re Randolph E. Kirchain (co-director of the MIT Concr Book 2016 The Minerals, Metals, and Materials Society 2

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Roadmap for the Lifecycle of Advanced Battery Chemistrieslenges of developing a more “circular” economy. The need for more efficient batteries to help the energy storage industry meet the changing needs of a growing world population is presenting new opportunities for metals used to make batteries. For the use of these metals to be compatible with the nee
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Automotive Lithium-Ion Battery Recycling: A Theoretical Evaluation of the vehicle, they will not be ending their useful lives in large numbers for another 10-15 years. An opportunity does therefore exist to prepare for some of the roadblocks that might arise during the development of technologies for environmentally sound recycling of LiBs. In view of this, there
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Life Cycle Assessment of Rare Earth Production from Monaziteg was estimated for the 15 rare earths produced from monazite, ranging from 21.3 kg CO.e/kg for europium to 197.9 kg CO.e/kg for yttrium. The average water consumption of rare earth production was 11,170 kg/kg ranging from 3,803 kg/kg for samarium and gadolinium to 29,902 kg/kg for yttrium. The aver
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Recovery of Rare Earth Elements from the Ferrous Fraction of Electronic Wasteled to a greater awareness of the limited and highly localized nature of mineral reserves, and the dilute nature of the undeveloped resources including those from secondary sources..Recycling of REEs is seen as one possible way to increase the supply of these elements with less impact on the environ
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Mitigating Supply Risk of Critical and Strategic Materials: The Role of Trade Policieslimited to, clean energy technologies, LEDs, smartphones, lasers, and microwave circuits. With increasing demand for these products, supply chain disruptions pose an ever-growing risk to the economic wellbeing of many nations, including the United States. One under-examined potential source of risk
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