First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template Carbon

The hydrogen adsorption characteristics and mechanism of transition metal-doped zeolite template carbon (ZTC) as a novel porous material are studied by theoretical calculations employing first-principle all-electron atomic orbital method based on density functional theory. The stability of transitio...

Full description

Bibliographic Details
Main Authors: Bai Han, Peng-Hao Lv, Wei-Feng Sun, Shu-Wei Song
Format: Article
Language:English
Published: MDPI AG 2019-07-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/9/8/397
id doaj-7f180fab38de4c69aadc0f9eadaaf1b6
record_format Article
spelling doaj-7f180fab38de4c69aadc0f9eadaaf1b62020-11-25T02:30:14ZengMDPI AGCrystals2073-43522019-07-019839710.3390/cryst9080397cryst9080397First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template CarbonBai Han0Peng-Hao Lv1Wei-Feng Sun2Shu-Wei Song3Key Laboratory of Engineering Dielectrics and Its Application, Ministry of Education, Heilongjiang Provincial Key Laboratory of Dielectric Engineering, School of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin 150080, ChinaKey Laboratory of Engineering Dielectrics and Its Application, Ministry of Education, Heilongjiang Provincial Key Laboratory of Dielectric Engineering, School of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin 150080, ChinaKey Laboratory of Engineering Dielectrics and Its Application, Ministry of Education, Heilongjiang Provincial Key Laboratory of Dielectric Engineering, School of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin 150080, ChinaKey Laboratory of Engineering Dielectrics and Its Application, Ministry of Education, Heilongjiang Provincial Key Laboratory of Dielectric Engineering, School of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin 150080, ChinaThe hydrogen adsorption characteristics and mechanism of transition metal-doped zeolite template carbon (ZTC) as a novel porous material are studied by theoretical calculations employing first-principle all-electron atomic orbital method based on density functional theory. The stability of transition metal atoms (Sc, Ti, and V) decorated on zeolite template carbon is investigated by calculating the absorption binding energy. The adsorption configurations of the doped metal atom and adsorbed hydrogen are obtained from the energy functional minimization of first-principles calculations. The underlying mechanism for improving hydrogen storage performance of ZTC by doping transition metal atoms are explored through analyzing charge/spin populations of metal atoms in combination with the calculated results of hydrogen adsorption quantity and binding energy. To improve the hydrogen storage capability, the Sc, Ti, and V are individually introduced into the ZTC model according to the triplex axisymmetry. The hydrogen storage properties of ZTC decorated with different metal atoms are characterized by the adsorption energy and structure of several hydrogen atoms. The more energetically stable complex system with higher binding energy and adsorbing distance of hydrogen than lithium-doped ZTC can be achieved by doping Sc, Ti, V atoms in ZTC, which is expected to fulfill the substantial safe hydrogen storage by increasing hydrogen capacity with multi-sites doping of transition metal atoms. The present investigation provides a theoretical basis and predictions for the following experimental research and design of porous materials for hydrogen storage.https://www.mdpi.com/2073-4352/9/8/397zeolite template carbontransition metal atomfirst-principles calculationhydrogen storage
collection DOAJ
language English
format Article
sources DOAJ
author Bai Han
Peng-Hao Lv
Wei-Feng Sun
Shu-Wei Song
spellingShingle Bai Han
Peng-Hao Lv
Wei-Feng Sun
Shu-Wei Song
First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template Carbon
Crystals
zeolite template carbon
transition metal atom
first-principles calculation
hydrogen storage
author_facet Bai Han
Peng-Hao Lv
Wei-Feng Sun
Shu-Wei Song
author_sort Bai Han
title First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template Carbon
title_short First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template Carbon
title_full First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template Carbon
title_fullStr First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template Carbon
title_full_unstemmed First-Principles Study on Hydrogen Storage Performance of Transition Metal-Doped Zeolite Template Carbon
title_sort first-principles study on hydrogen storage performance of transition metal-doped zeolite template carbon
publisher MDPI AG
series Crystals
issn 2073-4352
publishDate 2019-07-01
description The hydrogen adsorption characteristics and mechanism of transition metal-doped zeolite template carbon (ZTC) as a novel porous material are studied by theoretical calculations employing first-principle all-electron atomic orbital method based on density functional theory. The stability of transition metal atoms (Sc, Ti, and V) decorated on zeolite template carbon is investigated by calculating the absorption binding energy. The adsorption configurations of the doped metal atom and adsorbed hydrogen are obtained from the energy functional minimization of first-principles calculations. The underlying mechanism for improving hydrogen storage performance of ZTC by doping transition metal atoms are explored through analyzing charge/spin populations of metal atoms in combination with the calculated results of hydrogen adsorption quantity and binding energy. To improve the hydrogen storage capability, the Sc, Ti, and V are individually introduced into the ZTC model according to the triplex axisymmetry. The hydrogen storage properties of ZTC decorated with different metal atoms are characterized by the adsorption energy and structure of several hydrogen atoms. The more energetically stable complex system with higher binding energy and adsorbing distance of hydrogen than lithium-doped ZTC can be achieved by doping Sc, Ti, V atoms in ZTC, which is expected to fulfill the substantial safe hydrogen storage by increasing hydrogen capacity with multi-sites doping of transition metal atoms. The present investigation provides a theoretical basis and predictions for the following experimental research and design of porous materials for hydrogen storage.
topic zeolite template carbon
transition metal atom
first-principles calculation
hydrogen storage
url https://www.mdpi.com/2073-4352/9/8/397
work_keys_str_mv AT baihan firstprinciplesstudyonhydrogenstorageperformanceoftransitionmetaldopedzeolitetemplatecarbon
AT penghaolv firstprinciplesstudyonhydrogenstorageperformanceoftransitionmetaldopedzeolitetemplatecarbon
AT weifengsun firstprinciplesstudyonhydrogenstorageperformanceoftransitionmetaldopedzeolitetemplatecarbon
AT shuweisong firstprinciplesstudyonhydrogenstorageperformanceoftransitionmetaldopedzeolitetemplatecarbon
_version_ 1724829093392809984