Acta Metallurgica Sinica (English Letters) ›› 2020, Vol. 33 ›› Issue (5): 630-642.DOI: 10.1007/s40195-019-00990-4
• Original Paper • Previous Articles Next Articles
Yanghuan Zhang1,2(), Zhenyang Li2, Wei Zhang1,2, Wengang Bu2, Yan Qi2, Shihai Guo2
Received:
2019-06-09
Revised:
2019-08-28
Online:
2020-05-10
Published:
2020-05-25
Contact:
Yanghuan Zhang
Yanghuan Zhang, Zhenyang Li, Wei Zhang, Wengang Bu, Yan Qi, Shihai Guo. Structure and Electrochemical Hydrogen Storage Properties of as-Milled Mg-Ce-Ni-Al-Based Alloys[J]. Acta Metallurgica Sinica (English Letters), 2020, 33(5): 630-642.
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Fig. 1 XRD profiles of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled time
Fig. 2 SEM images and EDX curves of the as-cast Mg1-xCexNi0.9Al0.1 (x = 0-0.08) alloys: a-d SEM of Ce0, Ce0.04, Ce0.06 and Ce0.08 alloys, e-g EDX of Mg2Ni, Ni and Ce2Ni7
Fig. 3 HRTEM micrographs and ED patterns of the as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for different durations: a-c Ce0, Ce0.04 and Ce0.06 alloys milled for 10 h; d-f Ce0.08 alloy milled for 10 h, 20 h and 30 h
Fig. 4 Evolution of the discharge capacity of sample alloys: (a) as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, (b) Ce0.08 alloy for different milled times
Fig. 5 Evolution of the capacity retaining rates (Sn) of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled time
Fig. 6 Evolution of the capacity retaining rates (Sn) of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled times
Fig. 7 SEM images before and after electrochemical cycles and XRD curve after cycling of Ce0.08 alloy: a 5-h-milled Ce0.08 before cycling, b 5-h-milled Ce0.08 after cycling, c 30-h-milled Ce0.08 after cycling, d 30-h-milled Ce0.08 after cycling
Fig. 8 Discharge potential curves of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled times
Fig. 9 Evolution of the HRD of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled times
Fig. 10 Semilogarithmic curves of anodic current vs. time responses of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled times
Fig. 11 Potentiodynamic polarization curves of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled times
Fig. 14 Evolutions of the activation enthalpy ΔrH* values of sample alloys: a as-milled Mg1-xCexNi0.9Al0.1 (x = 0-0.08) + 50Ni alloys milled for 30 h, b Ce0.08 alloy for different milled times
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