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Rational Design Of Nanostructured Polymer Electrolytes And Solidliquid Interphases For Lithium Batteries 1st Ed 2019 Snehashis Choudhury

  • SKU: BELL-10799762
Rational Design Of Nanostructured Polymer Electrolytes And Solidliquid Interphases For Lithium Batteries 1st Ed 2019 Snehashis Choudhury
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Rational Design Of Nanostructured Polymer Electrolytes And Solidliquid Interphases For Lithium Batteries 1st Ed 2019 Snehashis Choudhury instant download after payment.

Publisher: Springer International Publishing
File Extension: PDF
File size: 13.77 MB
Author: Snehashis Choudhury
ISBN: 9783030289423, 9783030289430, 3030289427, 3030289435
Language: English
Year: 2019
Edition: 1st ed. 2019

Product desciption

Rational Design Of Nanostructured Polymer Electrolytes And Solidliquid Interphases For Lithium Batteries 1st Ed 2019 Snehashis Choudhury by Snehashis Choudhury 9783030289423, 9783030289430, 3030289427, 3030289435 instant download after payment.

This thesis makes significant advances in the design of electrolytes and interfaces in electrochemical cells that utilize reactive metals as anodes. Such cells are of contemporary interest because they offer substantially higher charge storage capacity than state-of-the-art lithium-ion battery technology. Batteries based on metallic anodes are currently considered impractical and unsafe because recharge of the anode causes physical and chemical instabilities that produce dendritic deposition of the metal leading to catastrophic failure via thermal runaway. This thesis utilizes a combination of chemical synthesis, physical & electrochemical analysis, and materials theory to investigate structure, ion transport properties, and electrochemical behaviors of hybrid electrolytes and interfacial phases designed to prevent such instabilities. In particular, it demonstrates that relatively low-modulus electrolytes composed of cross-linked networks of polymer-grafted nanoparticles stabilize electrodeposition of reactive metals by multiple processes, including screening electrode electrolyte interactions at electrochemical interfaces and by regulating ion transport in tortuous nanopores. This discovery is significant because it overturns a longstanding perception in the field of nanoparticle-polymer hybrid electrolytes that only solid electrolytes with mechanical modulus higher than that of the metal electrode are able to stabilize electrodeposition of reactive metals.


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