TY - JOUR
T1 - NaNH2–NaBH4 hydrogen storage composite materials synthesized via liquid phase ball-milling
T2 - Influence of Co–Ni–B catalyst on the dehydrogenation performances
AU - Pei, Zi wei
AU - Wu, Chuan
AU - Bai, Ying
AU - Liu, Xin
AU - Wu, Feng
N1 - Publisher Copyright:
© 2017 Hydrogen Energy Publications LLC
PY - 2017/5/25
Y1 - 2017/5/25
N2 - The composite NaNH2–NaBH4 (2/1 molar rate) doped with different amount Co–Ni–B catalyst was synthesized via liquid phase ball-milling method in the cyclohexane agent. The composition evolution and dehydrogenation performance of the as-prepared sample were characterized by means of XRD (X-ray diffraction), FT-IR (Fourier transform infrared spectroscopy) and TG–DTA–MS (Thermogravimetric–differential thermal analysis–mass spectroscopy) measurements, respectively; and the activation energies were calculated by the Achar differential and Coats–Redfern integral method. The composite NaNH2–NaBH4 (2/1) with 5 wt% Co–Ni–B catalyst (the sample C5) generated Na3(NH2)2BH4 successfully after the liquid phase ball-milling. Due to the interaction between functional groups of NaNH2–NaBH4 (2/1) with catalyst, Co–Ni–B catalyst not only benefits improving the thermodynamical performance, that is, the initial dehydrogenation temperature is as low as 200 °C and the weight percentage of hydrogen is about 5.05 wt% obtained from TG–DTA-MS curves; but also promoting the kinetics property that the activation energy of the major dehydrogenation stage is only 68.2 kJ mol−1. Furthermore, it is revealed that the kinetics mechanism of the dehydrogenation performance depends on the synthesis methods and adding catalyst.
AB - The composite NaNH2–NaBH4 (2/1 molar rate) doped with different amount Co–Ni–B catalyst was synthesized via liquid phase ball-milling method in the cyclohexane agent. The composition evolution and dehydrogenation performance of the as-prepared sample were characterized by means of XRD (X-ray diffraction), FT-IR (Fourier transform infrared spectroscopy) and TG–DTA–MS (Thermogravimetric–differential thermal analysis–mass spectroscopy) measurements, respectively; and the activation energies were calculated by the Achar differential and Coats–Redfern integral method. The composite NaNH2–NaBH4 (2/1) with 5 wt% Co–Ni–B catalyst (the sample C5) generated Na3(NH2)2BH4 successfully after the liquid phase ball-milling. Due to the interaction between functional groups of NaNH2–NaBH4 (2/1) with catalyst, Co–Ni–B catalyst not only benefits improving the thermodynamical performance, that is, the initial dehydrogenation temperature is as low as 200 °C and the weight percentage of hydrogen is about 5.05 wt% obtained from TG–DTA-MS curves; but also promoting the kinetics property that the activation energy of the major dehydrogenation stage is only 68.2 kJ mol−1. Furthermore, it is revealed that the kinetics mechanism of the dehydrogenation performance depends on the synthesis methods and adding catalyst.
KW - Co–Ni–B catalyst
KW - Dehydrogenation
KW - Hydrogen storage material
KW - Liquid phase ball-milling
KW - NaNH–NaBH
UR - http://www.scopus.com/inward/record.url?scp=85019017433&partnerID=8YFLogxK
U2 - 10.1016/j.ijhydene.2017.04.124
DO - 10.1016/j.ijhydene.2017.04.124
M3 - Article
AN - SCOPUS:85019017433
SN - 0360-3199
VL - 42
SP - 14725
EP - 14733
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
IS - 21
ER -