TY - JOUR
T1 - Sc/Y/Ti functionalized N-substituted defective C24 as promising materials for hydrogen storage
AU - Tang, Yupeng
AU - Zhao, Yanfei
AU - Yang, Haiying
AU - Zhao, Xiaoyun
AU - Li, Nan
N1 - Publisher Copyright:
© 2024 Hydrogen Energy Publications LLC
PY - 2024/10/18
Y1 - 2024/10/18
N2 - Incorporating transition metal atoms and creating porphorin-like N4 cavity are effective strategies for improving the hydrogen storage capability of carbon materials. In this view, we designed and addressed the hydrogen uptake properties of TM4C8N8 (TM = Sc, Y, Ti) cages originating from C24 to overcome TM clustering. The stabilities of three clusters were confirmed by molecular dynamic simulation. Sc4C8N8/Y4C8N8/Ti4C8N8 can bind up to 20/20/36H2 molecules with a higher gravimetric density of 9.35/6.67/15.27 wt%, compared to the goal of 5.5 wt% proposed by the US-DOE. The interaction between H2 molecules and the hosts can be identified as van der Waals attractions. The average binding energies of Sc4C8N8(H2)20/Y4C8N8(H2)20/Ti4C8N8(H2)36 at M06(D3) and PBE(D3) functional are 0.159/0.173/0.128 eV/H2 and 0.139/0.141/0.102 eV/H2, respectively, meeting the desirable range of reversible hydrogen storage. Furthermore, an investigation was conducted on the impact of pressure and temperature on the hydrogen storage capabilities of TM4C8N8 (TM = Sc, Y, Ti). The desorption temperature exhibits a positive correlation with increasing pressure. The realization of hydrogen release at near mild conditions and the reversibility of hydrogen adsorption/desorption cycles were demonstrated using the van't Hoff equation and ADMP-MD simulations, respectively. Compared with the monomer, the hydrogen storage capacities of (TM4C8N8)2 (TM = Sc, Y, Ti) dimers are slightly reduced.
AB - Incorporating transition metal atoms and creating porphorin-like N4 cavity are effective strategies for improving the hydrogen storage capability of carbon materials. In this view, we designed and addressed the hydrogen uptake properties of TM4C8N8 (TM = Sc, Y, Ti) cages originating from C24 to overcome TM clustering. The stabilities of three clusters were confirmed by molecular dynamic simulation. Sc4C8N8/Y4C8N8/Ti4C8N8 can bind up to 20/20/36H2 molecules with a higher gravimetric density of 9.35/6.67/15.27 wt%, compared to the goal of 5.5 wt% proposed by the US-DOE. The interaction between H2 molecules and the hosts can be identified as van der Waals attractions. The average binding energies of Sc4C8N8(H2)20/Y4C8N8(H2)20/Ti4C8N8(H2)36 at M06(D3) and PBE(D3) functional are 0.159/0.173/0.128 eV/H2 and 0.139/0.141/0.102 eV/H2, respectively, meeting the desirable range of reversible hydrogen storage. Furthermore, an investigation was conducted on the impact of pressure and temperature on the hydrogen storage capabilities of TM4C8N8 (TM = Sc, Y, Ti). The desorption temperature exhibits a positive correlation with increasing pressure. The realization of hydrogen release at near mild conditions and the reversibility of hydrogen adsorption/desorption cycles were demonstrated using the van't Hoff equation and ADMP-MD simulations, respectively. Compared with the monomer, the hydrogen storage capacities of (TM4C8N8)2 (TM = Sc, Y, Ti) dimers are slightly reduced.
KW - Atom density matrix propagation (ADMP)
KW - Density functional theory
KW - Hydrogen storage
KW - TMCN (TM = Sc, Y, Ti) clusters
KW - Transition metal decorated
UR - http://www.scopus.com/inward/record.url?scp=85203659953&partnerID=8YFLogxK
U2 - 10.1016/j.ijhydene.2024.09.108
DO - 10.1016/j.ijhydene.2024.09.108
M3 - Article
AN - SCOPUS:85203659953
SN - 0360-3199
VL - 87
SP - 1098
EP - 1109
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
ER -