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Nanoporous Materials for Gas Storage
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SpringerLink (Online service)
Nanoporous Materials for Gas Storage
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Nanoporous Materials for Gas Storage/ edited by Katsumi Kaneko, Francisco Rodríguez-Reinoso.
other author:
Kaneko, Katsumi.
Description:
X, 403 p. 176 illus., 118 illus. in color.online resource. :
Contained By:
Springer Nature eBook
Subject:
Energy storage. -
Online resource:
https://doi.org/10.1007/978-981-13-3504-4
ISBN:
9789811335044
Nanoporous Materials for Gas Storage
Nanoporous Materials for Gas Storage
[electronic resource] /edited by Katsumi Kaneko, Francisco Rodríguez-Reinoso. - 1st ed. 2019. - X, 403 p. 176 illus., 118 illus. in color.online resource. - Green Energy and Technology,1865-3529. - Green Energy and Technology,.
Introduction -- Supercritical gases -- Fundamental science of gas storage -- Engineering aspects of gas storage -- Nanoporous carbons -- MOFs -- Zeolites and other adsorbents -- Methane storage on nanoporous carbons -- Methane storage on metal organic frameworks -- Methane storage on zeolite and others adsorbents -- Storage of hydrogen on nanoporous adsorbents -- CO2 storage on nanoporous carbon -- CO2 storage on metal organic framework -- CO2 storage on zeolites and other adsorbents -- Clathrate-mediated gas storage -- Conclusions.
This book shows the promising future and essential issues on the storage of the supercritical gases, including hydrogen, methane and carbon dioxide, by adsorption with controlling the gas-solid interaction by use of designed nanoporous materials. It explains the reason why the storage of these gases with adsorption is difficult from the fundamentals in terms of gas-solid interaction. Also, the example of industrial application of natural gas storage with adsorption is described. It consists of 16 chapters which describe fundamentals, application, key nanoporous materials (nanoporous carbon, metal organic frame works, zeolites) and their storage performance for hydrogen, methane, and carbon dioxide. Thus, this book appeals to a wide readership of the academic and industrial researchers and it can also be used in the classroom for graduate students focusing on clean energy technology, green chemistry, energy conversion and storage, chemical engineering, nanomaterials science and technology, surface and interface science, adsorption science and technology, carbon science and technology, metal organic framework science, zeolite science, nanoporous materials science, nanotechnology, environmental protection, and gas sensors.
ISBN: 9789811335044
Standard No.: 10.1007/978-981-13-3504-4doiSubjects--Topical Terms:
677971
Energy storage.
LC Class. No.: TJ165
Dewey Class. No.: 621.3126
Nanoporous Materials for Gas Storage
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Introduction -- Supercritical gases -- Fundamental science of gas storage -- Engineering aspects of gas storage -- Nanoporous carbons -- MOFs -- Zeolites and other adsorbents -- Methane storage on nanoporous carbons -- Methane storage on metal organic frameworks -- Methane storage on zeolite and others adsorbents -- Storage of hydrogen on nanoporous adsorbents -- CO2 storage on nanoporous carbon -- CO2 storage on metal organic framework -- CO2 storage on zeolites and other adsorbents -- Clathrate-mediated gas storage -- Conclusions.
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This book shows the promising future and essential issues on the storage of the supercritical gases, including hydrogen, methane and carbon dioxide, by adsorption with controlling the gas-solid interaction by use of designed nanoporous materials. It explains the reason why the storage of these gases with adsorption is difficult from the fundamentals in terms of gas-solid interaction. Also, the example of industrial application of natural gas storage with adsorption is described. It consists of 16 chapters which describe fundamentals, application, key nanoporous materials (nanoporous carbon, metal organic frame works, zeolites) and their storage performance for hydrogen, methane, and carbon dioxide. Thus, this book appeals to a wide readership of the academic and industrial researchers and it can also be used in the classroom for graduate students focusing on clean energy technology, green chemistry, energy conversion and storage, chemical engineering, nanomaterials science and technology, surface and interface science, adsorption science and technology, carbon science and technology, metal organic framework science, zeolite science, nanoporous materials science, nanotechnology, environmental protection, and gas sensors.
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