4.6 Article

Dynamics and local ordering of pentachloronitrobenzene: a molecular-dynamics investigation

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PHYSICAL CHEMISTRY CHEMICAL PHYSICS
卷 25, 期 44, 页码 30553-30562

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d3cp02633g

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In this study, the dynamics of PCNB molecules were investigated using molecular dynamics simulations and X-ray diffraction experiments. The results reveal that the molecule undergoes fast and slow rotational movements due to the flexibility of the -NO2 group.
Plastic phases are constituted by molecules whose centers of mass form a long range ordered crystalline lattice, but rotate in a more or less constrained way. Pentachloronitrobenzene (PCNB) is a quasi-planar hexa-substituted benzene formed by a benzene ring decorated with a -NO2 group and five chlorine atoms that displays below the melting point a layered structure of rhombohedral (R3) planes in which the molecules can rotate around a six-fold-like axis. Dielectric spectroscopy [Romanini et al., The Journal of Physical Chemistry C, 2016, 120, 10614] of this highly anisotropic phase revealed a complex relaxation dynamics with two coupled primary alpha processes, initially ascribed to the in-plane and out-of-plane components of the molecular dipole. In this work, we perform a series of molecular dynamics simulations together with single crystal X-ray synchrotron diffraction experiments to investigate the puzzling dynamics of PCNB. We conclude that the molecule undergoes very fast movements due to the high flexibility of the -NO2 group, and two slower movements in which only the in-plane rotation of the whole ring is involved. These two movements are related to fast attempts to perform a 60 degrees in-plane rotation, and a diffusive motion that involves the rotation of the molecule completely decorrelating the dipole orientation. We have also investigated whether a homogeneous or a heterogeneous scenario is better suited to describe the restricted orientational disorder of this anisotropic phase both from a structural and dynamical point of view. Molecular dynamics simulations of PCNB reveals a homogeneous two-processes dynamics: fast reorientational attempts and a (meta) stable rattling motion. The results agree with those of dielectric spectroscopy and synchrotron diffraction experiments.

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