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Rare earth elements: critical resources for high technology

Abstract
The rare earth elements (REE) form the largest chemically coherent group in the periodic table. Though generally unfamiliar, the REE are essential for many hundreds of applications. The versatility and specificity of the REE has given them a level of technological, environmental, and economic importance considerably greater than might be expected from their relative obscurity. The United States once was largely self-sufficient in these critical materials, but over the past decade has become dependent upon imports (fig. 1). In 1999 and 2000, more than 90% of REE required by U.S. industry came from deposits in China. Although the 15 naturally occurring REE (table 1; fig. 2) are generally similar in their geochemical properties, their individual abundances in the Earth are by no means equal. In the continental crust and its REE ore deposits, concentrations of the most and least abundant REE typically differ by two to five orders of magnitude (fig. 3). As technological applications of REE have multiplied over the past several decades, demand for several of the less abundant (and formerly quite obscure) REE has increased dramatically. The diverse nuclear, metallurgical, chemical, catalytic, electrical, magnetic, and optical properties of the REE have led to an ever increasing variety of applications. These uses range from mundane (lighter flints, glass polishing) to high-tech (phosphors, lasers, magnets, batteries, magnetic refrigeration) to futuristic (hightemperature superconductivity, safe storage and transport of hydrogen for a post-hydrocarbon economy).

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Citations
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Journal ArticleDOI

Fundamentals and Catalytic Applications of CeO2-Based Materials

TL;DR: This review has a wide view on all those aspects related to ceria which promise to produce an important impact on the authors' life, encompassing fundamental knowledge of CeO2 and its properties, characterization toolbox, emerging features, theoretical studies, and all the catalytic applications, organized by their degree of establishment on the market.
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High-flux solar-driven thermochemical dissociation of CO2 and H2O using nonstoichiometric ceria

TL;DR: By using a solar cavity-receiver reactor, the oxygen uptake and release capacity of cerium oxide and facile catalysis at elevated temperatures to thermochemically dissociate CO2 and H2O, yielding CO andH2, respectively were combined and stable and rapid generation of fuel was demonstrated over 500 cycles.
Journal ArticleDOI

Evaluating rare earth element availability: a case with revolutionary demand from clean technologies

TL;DR: Upper and lower bound usage projections for REE in automotive and wind applications were developed to evaluate the state of future REE supply availability and identify some key variables that could affect future rare earth markets and market behavior.
Journal ArticleDOI

Rare earth elements:A review of applications, occurrence, exploration, analysis, recycling, and environmental impact

TL;DR: In this article, the authors summarized the occurrence of rare earth elements in the Earth's crust, their mineralogy, different types of deposits both on land and oceans from the standpoint of the new data with more examples from the Indian subcontinent.
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Rare earth elements as critical raw materials: Focus on international markets and future strategies

TL;DR: In this article, the problem of rare earths (REs) availability has also been discussed, and it has been shown that 97% of the global supply of REMs is produced by China, that has recently done copious cuts of its exports, apparently in order to protect its environment.
References
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Book

Lanthanides and Actinides

Simon Cotton
TL;DR: Scandium and Yttritium and the Lanthanides - Actinides - Chemistry of the Elements - Bibliography - Index as discussed by the authors ] and the Chemical Abstracts (CAA)
Journal ArticleDOI

A lanthanide lanthology

Book

Diverse Atoms: Profiles of the Chemical Elements

TL;DR: In this paper, the authors present a user's guide to filling the 1s orbital, the 2s and 2p orbitals, and the 3s, 3d, 4f and 4p orbits.
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