Carbon and Metal Oxides Based Nanomaterials for Flexible High Performance Asymmetric Supercapacitors
Softcover Reprint of the Original 1st 2018 ed.
by
Yating Hu
Book Details
Format
Paperback / Softback
Book Series
Springer Theses
ISBN-10
9811341273
ISBN-13
9789811341274
Edition
Softcover Reprint of the Original 1st 2018 ed.
Publisher
Springer Verlag, Singapore
Imprint
Springer Verlag, Singapore
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Feb 9th, 2019
Print length
108 Pages
Weight
216 grams
Dimensions
23.30 x 15.40 x 1.20 cms
Product Classification:
Science: general issuesCondensed matter physics (liquid state & solid state physics)Condensed matter physics (liquid state and solid state physics)NanotechnologyMechanical engineeringMaterials scienceOther technologies & applied sciencesOther technologies and applied sciences
Ksh 16,200.00
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This thesis examines electrode materials such as mesoporous carbons, manganese oxides, iron oxides and their nanohybrids with graphene.
This thesis examines electrode materials such as mesoporous carbons, manganese oxides, iron oxides and their nanohybrids with graphene. It also explores several of the key scientific issues that act as the governing principles for future development of supercapacitors, which are a promising class of high-efficiency energy storage devices for tackling a key aspect of the energy crisis. However, critical technical issues, such as the low energy density and reliability, need to be addressed before they can be extended to a wide range of applications with much improved performance. Currently available material candidates for the electrodes all have their disadvantages, such as a low specific capacitance or poor conductivity for transition metal oxide/hydroxide-based materials. This thesis addresses these important issues, and develops a high-performance, flexible asymmetric supercapacitor with manganese oxides/reduced graphene oxide as the positive electrode and iron oxide/reduced graphene oxide as the anode, which delivers a high energy density of 0.056 Wh cm-3.
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