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    <title>OAR@UM Collection:</title>
    <link>https://www.um.edu.mt/library/oar/handle/123456789/137504</link>
    <description />
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        <rdf:li rdf:resource="https://www.um.edu.mt/library/oar/handle/123456789/137631" />
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    <dc:date>2026-05-01T15:30:53Z</dc:date>
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  <item rdf:about="https://www.um.edu.mt/library/oar/handle/123456789/137631">
    <title>Auxetic behaviour in high pressure polymorphs of CO2 and H2O : a computational chemistry study</title>
    <link>https://www.um.edu.mt/library/oar/handle/123456789/137631</link>
    <description>Title: Auxetic behaviour in high pressure polymorphs of CO2 and H2O : a computational chemistry study
Abstract: In this work, a detailed study of the mechanical properties of the single crystal and&#xD;
polycrystalline aggregate of high-pressure polymorphs of H2O and CO2 will be carried out, &#xD;
paying particular attention to Poisson’s ratio of these systems. Using first principles density &#xD;
functional theory (DFT) calculations, this work will show for the first time that the high-pressure       &#xD;
polymorphs ice VIII, ice X, CO2-V and CO2-II have the potential to exhibit a &#xD;
negative Poisson’s ratio with the auxetic behaviour of these systems increasing with &#xD;
increasing hydrostatic pressure. To adequately study these systems using DFT simulations, &#xD;
detailed convergence and benchmarking studies will be carried out. It will be shown that &#xD;
contrary to the single crystal, the Poisson’s ratio of the polycrystalline aggregate of these &#xD;
systems exhibits a positive Poisson’s ratio which increases with increasing hydrostatic &#xD;
pressure. The deformation mechanism for ice X, ice VIII and CO2-V will be studied through &#xD;
the application of stress, with the proposed mechanism being consolidated through the use of &#xD;
spectroscopy. In the case of ice X and ice VIII, the auxetic behaviour will be rationalised by &#xD;
studying the deformation of two orthogonally interpenetrating rhombi on application of a &#xD;
stress. In the case of CO2-V, the auxeticity will be explained from a 2D perspective by the &#xD;
relative rotation of semi-rigid projected squares which both rotate and deform on application &#xD;
of a stress. It will also be shown that these 2D squares are projections of 3D CO4 tetrahedra &#xD;
which rotate relative to each other whilst stretching and deforming. In the case of CO2-II, it &#xD;
will be shown that the application of a stress results in a non-continuous change in the structural &#xD;
parameters studied. Thus, a novel approach will be developed in this thesis, where the auxetic &#xD;
behaviour of the system will be rationalised by studying the variation of the Raman active and &#xD;
infrared active modes with varying hydrostatic pressure and comparing any shifts observed in &#xD;
these modes with shifts in the Poisson’s ratio.
Description: Ph.D.(Melit.)</description>
    <dc:date>2022-01-01T00:00:00Z</dc:date>
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