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Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction

Experimental and computational studies of ammonium carbamate have been carried out, with the objective of studying the elastic anisotropy of the framework manifested in (i) the thermal expansion and (ii) the compressibility; furthermore, the relative thermodynamic stability of the two known polymorp...

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Autores principales: Howard, Christopher M., Wood, Ian G., Knight, Kevin S., Fortes, A. Dominic
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9254591/
https://www.ncbi.nlm.nih.gov/pubmed/35702963
http://dx.doi.org/10.1107/S2052520622002645
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author Howard, Christopher M.
Wood, Ian G.
Knight, Kevin S.
Fortes, A. Dominic
author_facet Howard, Christopher M.
Wood, Ian G.
Knight, Kevin S.
Fortes, A. Dominic
author_sort Howard, Christopher M.
collection PubMed
description Experimental and computational studies of ammonium carbamate have been carried out, with the objective of studying the elastic anisotropy of the framework manifested in (i) the thermal expansion and (ii) the compressibility; furthermore, the relative thermodynamic stability of the two known polymorphs has been evaluated computationally. Using high-resolution neutron powder diffraction data, the crystal structure of α-ammonium carbamate (ND(4)·ND(2)CO(2)) has been refined [space group Pbca, Z = 8, with a = 17.05189 (15), b = 6.43531 (7), c = 6.68093 (7) Å and V = 733.126 (9) Å(3) at 4.2 K] and the thermal expansivity of α-ammonium carbamate has been measured over the temperature range 4.2–180 K. The expansivity shows a high degree of anisotropy, with the b axis most expandable. The ab initio com­putational studies were carried out on the α- and β-polymorphs of ammonium carbamate using density functional theory. Fitting equations of state to the P(V) points of the simulations (run athermally) gave the following values: V (0) = 744 (2) Å(3) and bulk modulus K (0) = 16.5 (4) GPa for the α-polymorph, and V (0) = 713.6 (5) Å(3) and K (0) = 24.4 (4) GPa for the β-polymorph. The simulations show good agreement with the thermoelastic behaviour of α-ammonium carbamate. Both phases show a high-degree of anisotropy; in particular, α-ammonium carbamate shows unusual compressive behaviour, being determined to have negative linear compressibility (NLC) along its a axis above 5 GPa. The thermodynamically stable phase at ambient pressure is the α-polymorph, with a calculated enthalpy difference with respect to the β-polymorph of 0.399 kJ mol(−1); a transition to the β-polymorph could occur at ∼0.4 GPa.
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spelling pubmed-92545912022-07-14 Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction Howard, Christopher M. Wood, Ian G. Knight, Kevin S. Fortes, A. Dominic Acta Crystallogr B Struct Sci Cryst Eng Mater Research Papers Experimental and computational studies of ammonium carbamate have been carried out, with the objective of studying the elastic anisotropy of the framework manifested in (i) the thermal expansion and (ii) the compressibility; furthermore, the relative thermodynamic stability of the two known polymorphs has been evaluated computationally. Using high-resolution neutron powder diffraction data, the crystal structure of α-ammonium carbamate (ND(4)·ND(2)CO(2)) has been refined [space group Pbca, Z = 8, with a = 17.05189 (15), b = 6.43531 (7), c = 6.68093 (7) Å and V = 733.126 (9) Å(3) at 4.2 K] and the thermal expansivity of α-ammonium carbamate has been measured over the temperature range 4.2–180 K. The expansivity shows a high degree of anisotropy, with the b axis most expandable. The ab initio com­putational studies were carried out on the α- and β-polymorphs of ammonium carbamate using density functional theory. Fitting equations of state to the P(V) points of the simulations (run athermally) gave the following values: V (0) = 744 (2) Å(3) and bulk modulus K (0) = 16.5 (4) GPa for the α-polymorph, and V (0) = 713.6 (5) Å(3) and K (0) = 24.4 (4) GPa for the β-polymorph. The simulations show good agreement with the thermoelastic behaviour of α-ammonium carbamate. Both phases show a high-degree of anisotropy; in particular, α-ammonium carbamate shows unusual compressive behaviour, being determined to have negative linear compressibility (NLC) along its a axis above 5 GPa. The thermodynamically stable phase at ambient pressure is the α-polymorph, with a calculated enthalpy difference with respect to the β-polymorph of 0.399 kJ mol(−1); a transition to the β-polymorph could occur at ∼0.4 GPa. International Union of Crystallography 2022-04-30 /pmc/articles/PMC9254591/ /pubmed/35702963 http://dx.doi.org/10.1107/S2052520622002645 Text en © C. M. Howard et al. 2022 https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Research Papers
Howard, Christopher M.
Wood, Ian G.
Knight, Kevin S.
Fortes, A. Dominic
Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction
title Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction
title_full Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction
title_fullStr Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction
title_full_unstemmed Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction
title_short Ab initio simulations of α- and β-ammonium carbamate (NH(4)·NH(2)CO(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 K by neutron powder diffraction
title_sort ab initio simulations of α- and β-ammonium carbamate (nh(4)·nh(2)co(2)), and the thermal expansivity of deuterated α-ammonium carbamate from 4.2 to 180 k by neutron powder diffraction
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9254591/
https://www.ncbi.nlm.nih.gov/pubmed/35702963
http://dx.doi.org/10.1107/S2052520622002645
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