4.6 Article

N-Alkylpyrrolidine•Alane Compounds for Energy Applications

期刊

JOURNAL OF PHYSICAL CHEMISTRY C
卷 117, 期 6, 页码 2628-2634

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jp310848u

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资金

  1. Goldhaber Distinguished Fellowship Program at Brookhaven National Laboratory (BNL)
  2. BNL [DE-AC02-98CH10886]
  3. U.S. Department of Energy
  4. Office of Basic Energy Sciences

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Aluminum hydride (AlH3) has high gravimetric and volumetric hydrogen densities and is thus a promising hydrogen storage material. As part of our effort to develop a cost-effective regeneration pathway for AlH3, we report the synthesis and characterization of N-alkylpyrrolidine center dot alane complexes (NMPy)(2)center dot AlH3, NMPy center dot AlH3, and NEPy center dot AlH3 (NMPy = N-methylpyrrolidine, NEPy = N-ethylpyrrolidine); the reversible formation of (NMPy)(2)center dot AlH3 from titanium-doped aluminum metal (denoted as Al*), H-2 gas, and NMPy; and thermal decomposition studies of these alane adducts. Depending on the stoichiometric ratios of NMPy to AlH3, both the 2:1 complex (NMPy)(2)center dot AlH3 and the 1:1 complex NMPy center dot AlH3 can be selectively synthesized by direct reactions of NMPy with AlH3, whereas NEPy gives only the 1:1 adduct NEPy center dot AlH3 regardless of the ratio of NEPy to AlH3. In addition, the reversible formation of (NMPy)(2)center dot AlH3 from titanium-doped aluminum powder (Al*) and NMPy under a H-2 pressure of 1000 psi was observed, while no alane formation was detected with NEPy. Theoretical calculations of the molecular geometries and absolute free energies are in good agreement with experimental observations, and indicate that the dramatic differences between NMPy and NEPy are caused by the steric effects imposed by the alkyl group (methyl or ethyl) on the pyrrolidine ring. Finally, we established the role of LiH in the decomposition of amine center dot alane adducts, and showed that the hydrogenation of Al* with NMPy and the decomposition of N-alkylpyrrolidine center dot alane adducts in the presence of LiH could be combined to generate donor-free LiAlH4.

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