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However, the maximum hydrogen storage capacity and absorption kinetics can be reduced by the additions.
However, the maximum hydrogen storage capacity of alloys does not affected by the annealing temperature.
Maximum hydrogen storage capacities of the MmNi5 alloy have been obtained as 1.68, 1.64, 1.56 and 1.52 wt%.
In the present investigation, maximum hydrogen storage capacity is found as 1.68 wt%, when 2.0 wt% Co is added during ball-milling of MmNi5 alloy.
At 40 °C the immersion of the electrode in alkaline 0.01 M KBH4 solution for 24 h gave rapid activation and the maximum hydrogen storage capacity.
Maximum hydrogen storage capacities of the MmNi5 alloy have been obtained as 1.68, 1.64, 1.56 and 1.52 wt% on ball-milling with Co, Ni, Mn and Fe, respectively, at the concentration of 2.0 wt%.
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A maximum excess hydrogen storage capacity of 6.0 wt.% at 77 K and 4 MPa was obtained.
Some key findings of this work include new insights into the spectral properties of hydrogen molecules within hydrate cavities and the maximum possible hydrogen storage capacity of different clathrate structures.
The hydrogen absorption activity has been studied and a maximum of 2 wt% hydrogen storage capacity was observed.
Although some MOFs exhibit remarkable hydrogen storage capacity with maximum hydrogen uptake up to 11 wt%, which exceeds the 2010 DOE hydrogen storage target of 6.0 wt%, and the required low adsorption temperature impedes onboard storage applications.
In this case, hydrogen storage reaches its maximum capacity limit at hour 4, and the excess hydrogen production will no longer serve other sectors, so P2H will be curtailed to meet the maximum capacity constraint.
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