Predicting New Materials for Hydrogen Storage Application
Knowledge about the ground-state crystal structure is a prerequisite for the rational understanding of solid-state properties of new materials. To act as an efficient energy carrier, hydrogen should be absorbed and desorbed in materials easily and in high quantities. Owing to the complexity in struc...
Main Authors: | , , |
---|---|
Format: | Article |
Language: | English |
Published: |
MDPI AG
2009-12-01
|
Series: | Materials |
Subjects: | |
Online Access: | http://www.mdpi.com/1996-1944/2/4/2296/ |
id |
doaj-a9c1169bcd5d46b58646772a9f1e2486 |
---|---|
record_format |
Article |
spelling |
doaj-a9c1169bcd5d46b58646772a9f1e24862020-11-24T23:23:02ZengMDPI AGMaterials1996-19442009-12-01242296231810.3390/ma2042296Predicting New Materials for Hydrogen Storage ApplicationHelmer FjellvågPonniah VajeestonPonniah RavindranKnowledge about the ground-state crystal structure is a prerequisite for the rational understanding of solid-state properties of new materials. To act as an efficient energy carrier, hydrogen should be absorbed and desorbed in materials easily and in high quantities. Owing to the complexity in structural arrangements and difficulties involved in establishing hydrogen positions by x-ray diffraction methods, the structural information of hydrides are very limited compared to other classes of materials (like oxides, intermetallics, etc.). This can be overcome by conducting computational simulations combined with selected experimental study which can save environment, money, and man power. The predicting capability of first-principles density functional theory (DFT) is already well recognized and in many cases structural and thermodynamic properties of single/multi component system are predicted. This review will focus on possible new classes of materials those have high hydrogen content, demonstrate the ability of DFT to predict crystal structure, and search for potential meta-stable phases. Stabilization of such meta-stable phases is also discussed. http://www.mdpi.com/1996-1944/2/4/2296/hydrogen storage materialstheoretical modelingcomplex hydridesstructural study |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Helmer Fjellvåg Ponniah Vajeeston Ponniah Ravindran |
spellingShingle |
Helmer Fjellvåg Ponniah Vajeeston Ponniah Ravindran Predicting New Materials for Hydrogen Storage Application Materials hydrogen storage materials theoretical modeling complex hydrides structural study |
author_facet |
Helmer Fjellvåg Ponniah Vajeeston Ponniah Ravindran |
author_sort |
Helmer Fjellvåg |
title |
Predicting New Materials for Hydrogen Storage Application |
title_short |
Predicting New Materials for Hydrogen Storage Application |
title_full |
Predicting New Materials for Hydrogen Storage Application |
title_fullStr |
Predicting New Materials for Hydrogen Storage Application |
title_full_unstemmed |
Predicting New Materials for Hydrogen Storage Application |
title_sort |
predicting new materials for hydrogen storage application |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2009-12-01 |
description |
Knowledge about the ground-state crystal structure is a prerequisite for the rational understanding of solid-state properties of new materials. To act as an efficient energy carrier, hydrogen should be absorbed and desorbed in materials easily and in high quantities. Owing to the complexity in structural arrangements and difficulties involved in establishing hydrogen positions by x-ray diffraction methods, the structural information of hydrides are very limited compared to other classes of materials (like oxides, intermetallics, etc.). This can be overcome by conducting computational simulations combined with selected experimental study which can save environment, money, and man power. The predicting capability of first-principles density functional theory (DFT) is already well recognized and in many cases structural and thermodynamic properties of single/multi component system are predicted. This review will focus on possible new classes of materials those have high hydrogen content, demonstrate the ability of DFT to predict crystal structure, and search for potential meta-stable phases. Stabilization of such meta-stable phases is also discussed. |
topic |
hydrogen storage materials theoretical modeling complex hydrides structural study |
url |
http://www.mdpi.com/1996-1944/2/4/2296/ |
work_keys_str_mv |
AT helmerfjellvag predictingnewmaterialsforhydrogenstorageapplication AT ponniahvajeeston predictingnewmaterialsforhydrogenstorageapplication AT ponniahravindran predictingnewmaterialsforhydrogenstorageapplication |
_version_ |
1725565833889972224 |