4.7 Article

Structural Diversity and Trends in Properties of an Array of Hydrogen-Rich Ammonium Metal Borohydrides

Journal

INORGANIC CHEMISTRY
Volume 59, Issue 17, Pages 12733-12747

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.0c01797

Keywords

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Funding

  1. Danish Research Council for Nature and Universe (DanScatt)
  2. independent research fund of Denmark for technology and production through the project SOS-MagBat [DFF-9041-00226B]
  3. independent research fund of Denmark for technology and production through the project HyNanoBorN [DFF-4181-00462]
  4. Carlsberg Foundation
  5. CALIPSOpIus from the EU Framework programme for research and innovation HORIZON 2020 [730872]
  6. NordForsk via the project Functional Hydrides-FunHy [81942]
  7. Independent Research Fund Denmark [8028-00009B]
  8. KIST Institutional Program [2E29630]
  9. National Research Foundation of Korea [2E29630, 2E30211] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Metal borohydrides are a fascinating and continuously expanding class of materials, showing promising applications within many different fields of research. This study presents 17 derivatives of the hydrogen-rich ammonium borohydride, NH4BH4, which all exhibit high gravimetric hydrogen densities (>9.2 wt % of H-2). A detailed insight into the crystal structures combining X-ray diffraction and density functional theory calculations exposes an intriguing structural variety ranging from three-dimensional (3D) frameworks, 2D-layered, and 1D-chainlike structures to structures built from isolated complex anions, in all cases containing NH4+ countercations. Dihydrogen interactions between complex NH4+ and BH4- ions contribute to the structural diversity and flexibility, while inducing an inherent instability facilitating hydrogen release. The thermal stability of the ammonium metal borohydrides, as a function of a range of structural properties, is analyzed in detail. The Pauling electronegativity of the metal, the structural dimensionality, the dihydrogen bond length, the relative amount of NH4+ to BH4-, and the nearest coordination sphere of NH4+ are among the most important factors. Hydrogen release usually occurs in three steps, involving new intermediate compounds, observed as crystalline, polymeric, and amorphous materials. This research provides new opportunities for the design and tailoring of novel functional materials with interesting properties.

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