4.8 Article

From Exothermic to Endothermic Dehydrogenation - Interaction of Monoammoniate of Magnesium Amidoborane and Metal Hydrides

Journal

CHEMISTRY OF MATERIALS
Volume 24, Issue 18, Pages 3574-3581

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/cm301662q

Keywords

hydrogen storage; amidoborane; endothermic; dehydrogenation

Funding

  1. Hundred Talents Project
  2. Knowledge Innovation Program of CAS [KJCX2-YW-H21]
  3. 973 Project [2010CB631304]
  4. National Natural Science Foundation of China [10979051, 20971120, 20973162]

Ask authors/readers for more resources

Metal amidoborane ammoniate such as Mg-(NH2BH3)(2)center dot NH3 and Ca(NH2BH3)(2)center dot nNH(3) with n = 1, 2, release NH3 predominantly and endothermically at low temperatures in an open-system. However, a strong exothermic reaction occurs when these ammoniates were dehydrogenated in a closed-system, where the adducted NH3 take part in the reaction. Our approach in tailoring the thermodynamic properties of Mg(NH2BH3)(2)center dot NH3, by replacing its adducted NH3 with amide was successful, yielding a composite consisting of bimetallic amidoborane and Mg(NH2)(2). Crystal structures of bimetallic amidoboranes, i.e., Na2Mg(NH2BH3)(4) and K2Mg(NH2BH3)(4) were identified and solved. Significant improvement in the dehydrogenation thermodynamic was observed in the composite system as compared to the pristine Mg(NH2BH3)(2)center dot NH3, i.e., the dehydrogenation enthalpies were altered from an exothermic to an endothermic one. In addition, the detection of bimetallic amidoboranes in the composites urges detailed investigation on pristine bimetallic amidoborane, to which later we found that Na2Mg(NH2BH3)(4) also dehydrogenated endothermically at the identical temperature range (ca. 150-170 degrees C) with that of composite systems. Similar activation barriers were observed in Na2Mg(NH2BH3)(4) and composite systems, suggesting that metal hydride mediation may be the internal barrier that dominates the kinetic barrier of the composite system. First-principles calculations also showed that the thermodynamic stability of metal amidoborane (MNH2BH3, MAB) increases with decreasing Pauling electronegativity of the metal. Based on the calculated results, a reactant stabilization approach was proposed, which suggests that forming a stable reactant is an effective way of reducing the exothermicity of the dehydrogenation of metal amidoborane.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.8
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available