Functional Materials Based on Metal Hydrides / / Haiwen Li [and three others].

Our extreme and growing energy consumption, based on fossil fuels, has significantly increased the levels of carbon dioxide in the atmosphere, which may lead to global and irreversible climate changes. We have plenty of renewable energy, e.g., sun and wind, but the fluctuations over time and geograp...

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Place / Publishing House:Basel : : MDPI - Multidisciplinary Digital Publishing Institute,, 2018.
Year of Publication:2018
Language:English
Physical Description:1 online resource (180 pages)
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spelling Li, Haiwen, author.
Functional Materials Based on Metal Hydrides / Haiwen Li [and three others].
Basel : MDPI - Multidisciplinary Digital Publishing Institute, 2018.
1 online resource (180 pages)
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Description based on publisher supplied metadata and other sources.
Our extreme and growing energy consumption, based on fossil fuels, has significantly increased the levels of carbon dioxide in the atmosphere, which may lead to global and irreversible climate changes. We have plenty of renewable energy, e.g., sun and wind, but the fluctuations over time and geography call for a range of new ideas and, possibly, novel technologies. The most difficult challenge appears to be the development of the efficient and reliable storage of renewable energy. Hydrogen has long been considered as a potential means of energy storage; however, storage of hydrogen is also challenging. Therefore, a wide range of hydrogen-containing materials, with energy-related functions, has been discovered over the past few decades. The chemistry of hydrogen is very diverse, and so also are the new hydrides that have been discovered, not only in terms of structure and composition but also in terms of their properties. This has led to a wide range of new possible applications of metal hydrides that permeate beyond solid-state hydrogen storage. A variety of new hydrides, proposed as battery materials, has been discovered. These can exploit properties as fast ion conductors or as conversion-type electrodes with much higher potential energy capacities, compared to materials currently used in commercial batteries. Solar heat storage is also an area of great potential for metal hydrides, in principle offering orders of magnitude better storage performance than phase change materials. Recently, hydrides with optical and superconducting properties have also been investigated. This Special Issue of Inorganics, entitled "Functional Materials Based on Metal Hydrides", is dedicated to the full range of emerging electronic, photonic, and energy-related, inorganic, hydrogen-containing materials.
Metal hydrides.
3-03897-282-7
language English
format eBook
author Li, Haiwen,
spellingShingle Li, Haiwen,
Functional Materials Based on Metal Hydrides /
author_facet Li, Haiwen,
author_variant h l hl
author_role VerfasserIn
author_sort Li, Haiwen,
title Functional Materials Based on Metal Hydrides /
title_full Functional Materials Based on Metal Hydrides / Haiwen Li [and three others].
title_fullStr Functional Materials Based on Metal Hydrides / Haiwen Li [and three others].
title_full_unstemmed Functional Materials Based on Metal Hydrides / Haiwen Li [and three others].
title_auth Functional Materials Based on Metal Hydrides /
title_new Functional Materials Based on Metal Hydrides /
title_sort functional materials based on metal hydrides /
publisher MDPI - Multidisciplinary Digital Publishing Institute,
publishDate 2018
physical 1 online resource (180 pages)
isbn 3-03897-282-7
callnumber-first Q - Science
callnumber-subject QD - Chemistry
callnumber-label QD181
callnumber-sort QD 3181 H1 L54 42018
illustrated Not Illustrated
dewey-hundreds 500 - Science
dewey-tens 540 - Chemistry
dewey-ones 546 - Inorganic chemistry
dewey-full 546.2
dewey-sort 3546.2
dewey-raw 546.2
dewey-search 546.2
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is_hierarchy_title Functional Materials Based on Metal Hydrides /
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