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Updated: Jan 29, 2026

High Pressure Single Crystal Diffraction at PX^2
Published on: January 16, 2017
A jumping crystal predicted with molecular dynamics and analysed with TLS refinement against powder diffraction data
Jacco van de Streek1,2, Edith Alig2, Simon Parsons3
1Department of Pharmacy, University of Copenhagen, Copenhagen, Denmark.
Abstract:
By running a temperature series of molecular dynamics (MD) simulations starting from the known low-temperature phase, the experimentally observed phase transition in a 'jumping crystal' was captured, thereby providing a prediction of the unknown crystal structure of the high-temperature phase and clarifying the phase-transition mechanism. The phase transition is accompanied by a discontinuity in two of the unit-cell parameters. The structure of the high-temperature phase is very similar to that of the low-temperature phase. The anisotropic displacement parameters calculated from the MD simulations readily identified libration as the driving force behind the phase transition. Both the predicted crystal structure and the phase-transition mechanism were verified experimentally using TLS (translation, libration, screw) refinement against X-ray powder diffraction data.
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