TY - JOUR
T1 - Synergistic Effects of Mg and N Cosubstitution on Enhanced Dehydrogenation Properties of LiBH 4
T2 - A First-Principles Study
AU - Huang, Zhuonan
AU - Wang, Yuqi
AU - Wang, Di
AU - Yang, Fusheng
AU - Wu, Zhen
AU - Zheng, Lan
AU - Han, Xiaolong
AU - Wu, Le
AU - Zhang, Zaoxiao
N1 - Publisher Copyright:
© 2018 American Chemical Society.
PY - 2019/1/24
Y1 - 2019/1/24
N2 - A metal + nonmetal (Mg + N) partial cosubstitution method for improving the dehydrogenation properties of lithium borohydride (LiBH 4 ), which is a potential solid hydrogen storage material, is proposed. A detailed analysis of the electronic structure, charge density redistribution, and dehydrogenation properties reveals that the cosubstitution has a more positive effect on several properties, including the thermal stability, hydrogen dissociation energy, and dehydrogenation temperature, than the single substitution of Mg or N. When Mg and N are codoped into LiBH 4 , its formation enthalpy increases from -0.332 to -0.293 eV·atom -1 and its thermal stability decreases. Moreover, density functional theory calculations of the Mg + N cosubstituted system show that its hydrogen dissociation energy is the lowest and the onset dehydrogenation temperature is reduced to 160.5 °C, indicating that Mg + N cosubstitution can significantly promote the dehydrogenation thermodynamic performance of LiBH 4 materials.
AB - A metal + nonmetal (Mg + N) partial cosubstitution method for improving the dehydrogenation properties of lithium borohydride (LiBH 4 ), which is a potential solid hydrogen storage material, is proposed. A detailed analysis of the electronic structure, charge density redistribution, and dehydrogenation properties reveals that the cosubstitution has a more positive effect on several properties, including the thermal stability, hydrogen dissociation energy, and dehydrogenation temperature, than the single substitution of Mg or N. When Mg and N are codoped into LiBH 4 , its formation enthalpy increases from -0.332 to -0.293 eV·atom -1 and its thermal stability decreases. Moreover, density functional theory calculations of the Mg + N cosubstituted system show that its hydrogen dissociation energy is the lowest and the onset dehydrogenation temperature is reduced to 160.5 °C, indicating that Mg + N cosubstitution can significantly promote the dehydrogenation thermodynamic performance of LiBH 4 materials.
UR - https://www.scopus.com/pages/publications/85060021435
U2 - 10.1021/acs.jpcc.8b08198
DO - 10.1021/acs.jpcc.8b08198
M3 - 文章
AN - SCOPUS:85060021435
SN - 1932-7447
VL - 123
SP - 1550
EP - 1558
JO - Journal of Physical Chemistry C
JF - Journal of Physical Chemistry C
IS - 3
ER -