On the possibility that PbZrO3 not be antiferroelectric
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作者:
Hugo Aramberri
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机构:Luxembourg Institute of Science and Technology,Materials Research and Technology Department
Hugo Aramberri
Claudio Cazorla
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机构:Luxembourg Institute of Science and Technology,Materials Research and Technology Department
Claudio Cazorla
Massimiliano Stengel
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机构:Luxembourg Institute of Science and Technology,Materials Research and Technology Department
Massimiliano Stengel
Jorge Íñiguez
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机构:Luxembourg Institute of Science and Technology,Materials Research and Technology Department
Jorge Íñiguez
机构:
[1] Luxembourg Institute of Science and Technology,Materials Research and Technology Department
[2] Universitat Politècnica de Catalunya,Departament de Física
[3] Institut de Ciència de Materials de Barcelona (ICMAB-CSIC),Department of Physics and Materials Science
[4] ICREA-Institució Catalana de Recerca i Estudis Avançats,undefined
[5] University of Luxembourg,undefined
来源:
npj Computational Materials
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7卷
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摘要:
Lead zirconate (PbZrO3) is considered the prototypical antiferroelectric material with an antipolar ground state. Yet, several experimental and theoretical works hint at a partially polar behaviour in this compound, indicating that the polarization may not be completely compensated. In this work, we propose a simple ferrielectric structure for lead zirconate. First-principles calculations reveal this state to be more stable than the commonly accepted antiferroelectric phase at low temperatures, possibly up to room temperature, suggesting that PbZrO3 may not be antiferroelectric at ambient conditions. We discuss the implications of our discovery, how it can be reconciled with experimental observations and how the ferrielectric phase could be obtained in practice.