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Crystal Structure and Non-Hydrostatic Stress-Induced Phase Transition of Urotropine Under High Pressure
Authors:Dr Piotr A Guńka  Dr Anna Olejniczak  Dr Samuele Fanetti  Prof Dr Roberto Bini  Dr Ines E Collings  Dr Volodymyr Svitlyk  Dr Kamil F Dziubek
Institution:1. Faculty of Chemistry, Warsaw University of Technology, Noakowskiego 3, 00664 Warszawa, Poland;2. Faculty of Chemistry, Adam Mickiewicz University, Uniwersytetu Poznańskiego 8, 61614 Poznań, Poland;3. Instituto di Chimica dei Composti Organo-Metallici, CNR-ICCOM, Via Madonna del Piano 10, 50019 Sesto Fiorentino, Italy;4. current address: Center for X-ray Analytics, Empa—Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland;5. European Synchrotron Radiation Facility 71, avenue des Martyrs, CS 40220, 38043 Grenoble, France;6. LENS, European Laboratory for Nonlinear Spectroscopy, Via Nello Carrara 1, 50019 Sesto Fiorentino, Italy
Abstract:High-pressure behavior of hexamethylenetetramine (urotropine) was studied in situ using angle-dispersive single-crystal synchrotron X-ray diffraction (XRD) and Fourier-transform infrared absorption (FTIR) spectroscopy. Experiments were conducted in various pressure-transmitting media to study the effect of deviatoric stress on phase transformations. Up to 4 GPa significant damping of molecular librations and atomic thermal motion was observed. A first-order phase transition to a tetragonal structure was observed with an onset at approximately 12.5 GPa and characterized by sluggish kinetics and considerable hysteresis upon decompression. However, it occurs only in non-hydrostatic conditions, induced by deviatoric or uniaxial stress in the sample. This behavior finds analogies in similar cubic crystals built of highly symmetric cage-like molecules and may be considered a common feature of such systems. DFT computations were performed to model urotropine equation of state and pressure dependence of vibrational modes. The first successful Hirshfeld atom refinements carried out for high-pressure diffraction data are reported. The refinements yielded more realistic C−H bond lengths than the independent atom model even though the high-pressure diffraction data are incomplete.
Keywords:high-pressure chemistry  Hirshfeld atom refinement  IR spectroscopy  urotropine  X-ray diffraction
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