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Ammonothermal Synthesis, X‐Ray and Time‐of‐Flight Neutron Crystal‐Structure Determination, and Vibrational Properties of Barium Guanidinate, Ba(CN 3 H 4 ) 2

Authors :
Takashi Kamiyama
Richard Dronskowski
Ralf P. Stoffel
Shuki Torii
Sebastian Benz
Ronja Missong
George Ogutu
Ping Miao
Ulli Englert
Source :
ChemistryOpen : including thesis treasury 8(3), 327-332 (2019). doi:10.1002/open.201900068
Publication Year :
2019
Publisher :
Wiley, 2019.

Abstract

We report the crystal structure of Ba(CN3H4)2 as synthesized from liquid ammonia. Structure solution based on X-ray diffraction data suffers from a severe pseudo-tetragonal problem due to extreme scattering contrast, so the true monoclinic symmetry is detectable only from neutron powder diffraction patterns, and structure solution and refinement was greatly aided by density-functional theory. The symmetry lowering is due to slight deviations of the guanidinate anion from the mirror plane in space group P 4 ‾ b2, a necessity of hydrogen bonding. At 300 K, barium guanidinate crystallizes in P21/c with a=6.26439(2) A, b=16.58527(5) A, c=6.25960(2) A, and a monoclinic angle of β=90.000(1)°. To improve the data-to-parameter ratio, anisotropic displacement parameters from first-principles theory were incorporated in the neutron refinement. Given the correct structural model, the positional parameters of the heavy atoms were also refinable from X-ray diffraction of a twinned crystal. The two independent guanidinate anions adopt the all-trans- and the anti-shape. The Ba cation is coordinated by eight imino nitrogens in a square antiprism with Ba-N contacts between 2.81 and 3.04 A. The IR and Raman spectra of barium guanidinate were compared with DFT-calculated phonon spectra to identify the vibrational modes.

Details

ISSN :
21911363
Volume :
8
Database :
OpenAIRE
Journal :
ChemistryOpen
Accession number :
edsair.doi.dedup.....778e261ae8a3c9fc895fdb433c5e3699
Full Text :
https://doi.org/10.1002/open.201900068