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Titlebook: Solid State Batteries: Materials Design and Optimization; Christian Julien,Gholam-Abbas Nazri Book 1994 Springer Science+Business Media Ne

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書目名稱Solid State Batteries: Materials Design and Optimization
編輯Christian Julien,Gholam-Abbas Nazri
視頻videohttp://file.papertrans.cn/872/871547/871547.mp4
叢書名稱The Springer International Series in Engineering and Computer Science
圖書封面Titlebook: Solid State Batteries: Materials Design and Optimization;  Christian Julien,Gholam-Abbas Nazri Book 1994 Springer Science+Business Media Ne
描述The field of solid state ionics is multidisciplinary in nature. Chemists, physicists, electrochimists, and engineers all are involved in the research and development of materials, techniques, and theoretical approaches. This science is one of the great triumphs of the second part of the 20th century. For nearly a century, development of materials for solid-state ionic technology has been restricted. During the last two decades there have been remarkable advances: more materials were discovered, modem technologies were used for characterization and optimization of ionic conduction in solids, trial and error approaches were deserted for defined predictions. During the same period fundamental theories for ion conduction in solids appeared. The large explosion of solid-state ionic material science may be considered to be due to two other influences. The first aspect is related to economy and connected with energy production, storage, and utilization. There are basic problems in industrialized countries from the economical, environmental, political, and technological points of view. The possibility of storing a large amount of utilizable energy in a comparatively small volume would make
出版日期Book 1994
關(guān)鍵詞crystal; electrolyte; ion; materials science; optimization; polymer; solid state ionics; thin films
版次1
doihttps://doi.org/10.1007/978-1-4615-2704-6
isbn_softcover978-1-4613-6164-0
isbn_ebook978-1-4615-2704-6Series ISSN 0893-3405
issn_series 0893-3405
copyrightSpringer Science+Business Media New York 1994
The information of publication is updating

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Materials for electrodes: Amorphous and thin-films,ses with high ionic conductivity [.–.] allows us to consider the possibility of employing glasses as positive electrode materials. These materials could offer significant technological advantages due to their vitreous structure:
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0893-3405 research and development of materials, techniques, and theoretical approaches. This science is one of the great triumphs of the second part of the 20th century. For nearly a century, development of materials for solid-state ionic technology has been restricted. During the last two decades there hav
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Materials for electrolyte: Fast-ion-conducting glasses, liquid electrolytes than crystalline solids. It is easier to define an amorphous state by saying what it is not than by precisely specifying what it is. Amorphous materials are noncrystalline substances. They lack long-range periodic ordering of their constituent atoms. That is not to say that amor
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Materials for electrolyte: Thin-films,ships which have been developed in this field. Thin-film technology is examined from the interrelated viewpoints of product application, materials structure/properties relationships, and manufacturing-deposition methods. Special emphasis is given to the thin-film materials properties of lithium-bora
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Materials for electrodes: Amorphous and thin-films,rators with an alkali metal or silver anode have been essentially crystalline (transition metal didialcogenides and oxides). Yet the discovery of the semiconducting properties of phosphorus pentoxide-based glasses, a quarter of a century ago [.], associated with the synthesis of phosphate-based glas
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Applications of solid-state ionic materials,ge into a coherent field during the last 10 years. Various designs of working devices are outlined in this chapter with the emphasis on all solid-state configurations. The large number of references reflects the great interest of researchers in energy storage devices, sensors, and optical and other
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