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Phase transition in an organic ferroelectric: glycinium phosphite, with and without X-ray radiation damage. | LitMetric

AI Article Synopsis

  • Scientists studied a special material called glycinium phosphite to see how it changes when heated or cooled, using two different types of X-ray machines.*
  • They found that at around -48°C (225 K), the material changes from a non-magnetic state (paraelectric) to a magnetic state (ferroelectric).*
  • The results from one machine (synchrotron) were different from the other (laboratory), showing strange volume changes and suggesting that radiation from the synchrotron might be affecting the experiment.*

Article Abstract

Thermal evolution of an organic ferroelectric, namely, glycinium phosphite, was probed by multi-temperature single-crystal diffraction using synchrotron radiation and also by a similar experiment with a laboratory X-ray diffractometer. Both series of measurements showed a transition from the paraelectric to the ferroelectric state at nearly the same temperature, T = 225 K. Temperature evolution of the unit-cell parameters and volume are drastically different for the synchrotron and laboratory data. The latter case corresponds to previous reports and shows an expected contraction of the cell on cooling. The data collected with the synchrotron beam show an abnormal nonlinear increase in volume on cooling. Structure analysis shows that this volume increase is accompanied by a suppression of scattering at high angles and an apparent increase of the anisotropic displacement parameters for all atoms; we therefore link these effects to radiation damage accumulated during consecutive data collections. The effects of radiation on the formation of the polar structure of ferroelectric glycinium phosphite is discussed together with the advantages and drawbacks of synchrotron experimentation with fine temperature sampling.

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Source
http://dx.doi.org/10.1107/S2052520621003127DOI Listing

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