Please use this identifier to cite or link to this item:
http://essuir.sumdu.edu.ua/handle/123456789/35817
Or use following links to share this resource in social networks:
Tweet
Recommend this item
Title | Synthesis, Characterization and Density Functional Study of LiMn1.5Ni 0.5O4 Electrode for Lithium ion Battery |
Authors |
Aruna, Bharathi M.
Venkateswara Rao, K. Sushama, M. |
ORCID | |
Keywords |
Co-precipitation DFT Li-ion Battery LiNi0 5Mn1 5O4 XRD Transmission spectrum Band structure Density of states |
Type | Article |
Date of Issue | 2014 |
URI | http://essuir.sumdu.edu.ua/handle/123456789/35817 |
Publisher | Sumy State University |
License | |
Citation | Aruna, Bharathi M. Synthesis, Characterization and Density Functional Study of LiMn1.5Ni 0.5O4 Electrode for Lithium ion Battery [Текст] / Bharathi M. Aruna, Rao K. Venkateswara, M. Sushama // Журнал нано- та електронної фізики. — 2014. — Т.6, №1. — 01005. |
Abstract |
This paper analyses material issues of development of Li-ion batteries to store electrical energy. The performance of the battery is improved by developing the high energy density cathode materials at Nano level. This paper explains the synthesis of most interesting cathode material Lithium Manganese Spinel and its derivatives like transition metal oxide (LiNi0.5Mn1.5O4) using Co-Precipitation chemical method; it is one of the eco-friendly ,effective, economic and easy preparation method. The structural features of LiNi0.5Mn1.5O4 was characterized by XRD – analysis indicated that prepared sample mainly belong to cubic crystal form with Fd3m space group ,with lattice parameter a 8.265 and average crystal size of 31.59 nm and compared the experimental results with computation details from first principle computation methods with Quantum wise Atomistix Tool Kit (ATK),Virtual Nano Lab. First principle computation methods provide important role in emerging and optimizing this electrode material. In this study we present an overview of the computation approach aimed at building LiNi0.5Mn1.5O4 crystal as cathode for Lithium ion battery. We show each significant property can be related to the structural component in the material and can be computed from first principle. By direct comparison with experimental results, we assume to interpret that first principle computation can help to accelerate the design & development of LiNi0.5Mn1.5O4 as cathode material of lithium ion battery for energy storage.
When you are citing the document, use the following link http://essuir.sumdu.edu.ua/handle/123456789/35817 |
Appears in Collections: |
Журнал нано- та електронної фізики (Journal of nano- and electronic physics) |
Views
Belgium
-1484420147
Bolivia
1
China
43
France
2020693105
Germany
123317
Greece
54831
India
1606987566
Iran
1
Ireland
13858046
Israel
1
Japan
1056762734
Lithuania
1
Netherlands
1
Pakistan
1
Russia
9
Singapore
1825036387
South Korea
2
Sweden
-1085355706
Switzerland
1
Turkey
-847537392
Ukraine
220649
United Kingdom
2020693102
United States
-1484420149
Unknown Country
-2136636206
Vietnam
54833
Downloads
Belgium
1
Bolivia
1
China
16
Denmark
2
France
1
Germany
3
India
624940
Indonesia
1
Iran
3
Israel
1
Japan
11005
Lithuania
1
Singapore
2
South Korea
1
Sweden
1
Switzerland
1
Ukraine
106849
United Kingdom
1
United States
1825036386
Unknown Country
59
Vietnam
1
Files
File | Size | Format | Downloads |
---|---|---|---|
Aruna_Density of states.pdf | 1.14 MB | Adobe PDF | 1825779276 |
Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.