Hydrogen desorption mechanism of a Li–N–H hydrogen storage system

2010 ◽  
Vol 962 (1-3) ◽  
pp. 68-71 ◽  
Author(s):  
Min Hee Park ◽  
Hyungjun Kim ◽  
Jae Jung Urm ◽  
Jun Ho Lee ◽  
Young-Kyu Han ◽  
...  
Micromachines ◽  
2021 ◽  
Vol 12 (10) ◽  
pp. 1190
Author(s):  
Zhaojie Wu ◽  
Jianhua Fang ◽  
Na Liu ◽  
Jiang Wu ◽  
Linglan Kong

MgH2 has become a hot spot in the research of hydrogen storage materials, due to its high theoretical hydrogen storage capacity. However, the poor kinetics and thermodynamic properties of hydrogen absorption and desorption seriously hinder the development of this material. Ti-based materials can lead to good effects in terms of reducing the temperature of MgH2 in hydrogen absorption and desorption. MXene is a novel two-dimensional transition metal carbide or carbonitride similar in structure to graphene. Ti3C2 is one of the earliest and most widely used MXenes. Single-layer Ti3C2 can only exist in solution; in comparison, multilayer Ti3C2 (ML-Ti3C2) also exists as a solid powder. Thus, ML-Ti3C2 can be easily composited with MgH2. The MgH2+ML-Ti3C2 composite hydrogen storage system was successfully synthesized by ball milling. The experimental results show that the initial desorption temperature of MgH2-6 wt.% ML-Ti3C2 is reduced to 142 °C with a capacity of 6.56 wt.%. The Ea of hydrogen desorption in the MgH2-6 wt.% ML-Ti3C2 hydrogen storage system is approximately 99 kJ/mol, which is 35.3% lower than that of pristine MgH2. The enhancement of kinetics in hydrogen absorption and desorption by ML-Ti3C2 can be attributed to two synergistic effects: one is that Ti facilitates the easier dissociation or recombination of hydrogen molecules, while the other is that electron transfer generated by multivalent Ti promotes the easier conversion of hydrogen. These findings help to guide the hydrogen storage properties of metal hydrides doped with MXene.


NANO ◽  
2010 ◽  
Vol 05 (06) ◽  
pp. 341-347 ◽  
Author(s):  
S. SAFA ◽  
M. MOJTAHEDZADEH LARIJANI ◽  
V. FATHOLLAHI ◽  
O. R. KAKUEE

Hydrogen storage capacity of a carbon nanotube (CNT) sample is investigated using Elastic Recoil Detection Analysis (ERDA) at constant hydrogen uptake pressure of 5 bar and different adsorption temperatures within 30°C–500°C. The results of hydrogen concentration versus temperature revealed three distinct temperature intervals in which a certain adsorption or desorption mechanism is dominant. Moreover, the results showed that hydrogen storage capacity of CNTs at the applied conditions of pressure and temperature is about 0.1 wt.% which is well below the DOE requirements for a viable hydrogen storage system. The physidesorption activation energy is calculated using the Arrhenius plot to be 6 kJmol-1.


2001 ◽  
Vol 322 (1-2) ◽  
pp. 246-248 ◽  
Author(s):  
Huan-tang Yuan ◽  
Rui Cao ◽  
Lian-bang Wang ◽  
Yi-jing Wang ◽  
Xue-ping Gao ◽  
...  

2013 ◽  
Vol 77 (12) ◽  
pp. 571-574
Author(s):  
Shigehito Isobe ◽  
Miki Dohkoshi ◽  
Yongming Wang ◽  
Naoyuki Hashimoto ◽  
Somei Ohnuki ◽  
...  

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