4.8 Article

Large Negative Thermal Expansion Induced by Synergistic Effects of Ferroelectrostriction and Spin Crossover in PbTiO3-Based Perovskites

Journal

CHEMISTRY OF MATERIALS
Volume 31, Issue 4, Pages 1296-1303

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.8b04266

Keywords

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Funding

  1. National Natural Science Foundation of China [21805215, 21825102, 21731001]
  2. National Program for Support of Top-notch Young Professionals
  3. Program for Changjiang Young Scholars
  4. Fundamental Research Funds for the Central Universities, China [FRF-TP-17-001B]
  5. China Postdoctoral Science Foundation [2017M622536]
  6. U.S. Department of Energy, Office of Science, Office of Basic Energy Science [DE-AC02-06CH11357]

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The discovery of unusual negative thermal expansion (NTE) provides the opportunity to control the common but much desired property of thermal expansion, which is valuable not only in scientific interests but also in practical applications. However, most of the available NTE materials are limited to a narrow temperature range, and the NTE effect is generally weakened by various modifications. Here, we report an enhanced NTE effect that occurs over a wide temperature range ((alpha) over bar (v) = -5.24 x 10(-5) degrees C-1, 25-575 degrees C), and this NTE effect is accompanied by an abnormal enhanced tetragonality, a large spontaneous polarization, and a G-type antiferromagnetic ordering in the present perovskite-type ferroelectric of (1-x)PbTiO3-xBiCoO(3). Specifically, for the composition of 0.5PbTiO(3)-0.5BiCoO(3), an extensive volumetric contraction of similar to 4.8 % has been observed near the Curie temperature of 700 degrees C, which represents the highest level in PbTiO(3)(-)based ferroelectrics. According to our experimental and theoretical results, the large NTE originates from a synergistic effect of the ferroelectrostriction and spin crossover of cobalt on the crystal lattice. The actual NTE mechanism is contrasted with previous functional NTE materials, in which the NTE is simply coupled with one ordering such as electronic, magnetic, or ferroelectric ordering. The present study sheds light on the understanding of NTE mechanisms, and it attests that NTE could be simultaneously coupled with different orderings, which will pave a new way toward the design of large NTE materials.

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