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Updated: Feb 18, 2026

Measuring Magnetically-Tuned Ferroelectric Polarization in Liquid Crystals
Published on: August 15, 2018
Decoupling the Compositional Fluctuation Theory and Polar Nanoregions in Relaxor Ferroelectric Films
Feng-Hui Gong1,2, Yu-Ting Chen1,2, Kang-Ming Luo3,4
1Songshan Lake Materials Laboratory, Bay Area Center for Electron Microscopy, Dongguan, 523808 Guangdong, China.
None:
The existence of polar nanoregions (PNRs) endows relaxor ferroelectrics with peculiar behaviors, which is explained using the compositional fluctuation theory (CFT). Here, by designing relaxor ferroelectric films with the same configurational entropy (S_{config}), namely ATiO_{3} and PbBO_{3}, we show that the compositional heterogeneity is not a prerequisite for PNR formation. Transmission electron microscope experiments show that PNRs exist in both cubic films, and only the PbBO_{3} film shows remarkable compositional fluctuation, i.e., the formation of PNRs in ATiO_{3} is not related with the CFT. First-principles calculations indicate that while the mixing enthalpies of element pairs in ATiO_{3} are generally close to 0, resulting in a nearly homogeneous compositional distribution, those of some element pairs in PbBO_{3} are large negative values, indicating that the compositional fluctuation is rooted in the large negative mixing enthalpy. This Letter offers a new perspective on the CFT in relaxor ferroelectrics.
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