Literature DB >> 24224928

Control of bond-strain-induced electronic phase transitions in iron perovskites.

Ikuya Yamada1, Hidenobu Etani, Kazuki Tsuchida, Shohei Marukawa, Naoaki Hayashi, Takateru Kawakami, Masaichiro Mizumaki, Kenya Ohgushi, Yoshihiro Kusano, Jungeun Kim, Naruki Tsuji, Ryoji Takahashi, Norimasa Nishiyama, Toru Inoue, Tetsuo Irifune, Mikio Takano.   

Abstract

Unusual electronic phase transitions in the A-site ordered perovskites LnCu3Fe4O12 (Ln: trivalent lanthanide ion) are investigated. All LnCu3Fe4O12 compounds are in identical valence states of Ln(3+)Cu(2+)3Fe(3.75+)4O12 at high temperature. LnCu3Fe4O12 with larger Ln ions (Ln = La, Pr, Nd, Sm, Eu, Gd, Tb) show an intersite charge transfer transition (3Cu(2+) + 4Fe(3.75+) → 3Cu(3+) + 4Fe(3+)) in which the transition temperature decreases from 360 to 240 K with decreasing Ln ion size. In contrast, LnCu3Fe4O12 with smaller Ln ions (Ln = Dy, Ho, Er, Tm Yb, Lu) transform into a charge-disproportionated (8Fe(3.75+) → 5Fe(3+) + 3Fe(5+)) and charge-ordered phase below ∼250-260 K. The former series exhibits metal-to-insulator, antiferromagnetic, and isostructural volume expansion transitions simultaneously with intersite charge transfer. The latter shows metal-to-semiconductor, ferrimagnetic, and structural phase transitions simultaneously with charge disproportionation. Bond valence calculation reveals that the metal-oxygen bond strains in these compounds are classified into two types: overbonding or compression stress (underbonding or tensile stress) in the Ln-O (Fe-O) bond is dominant in the former series, while the opposite stresses or bond strains are found in the latter. Intersite charge transfer transition temperatures are strongly dependent upon the global instability indices that represent the structural instability calculated from the bond valence sum, whereas the charge disproportionation occurs at almost identical temperatures, regardless of the magnitude of structural instability. These findings provide a new aspect of the structure-property relationship in transition metal oxides and enable precise control of electronic states by bond strains.

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Year:  2013        PMID: 24224928     DOI: 10.1021/ic402344m

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  4 in total

1.  Complementary evaluation of structure stability of perovskite oxides using bond-valence and density-functional-theory calculations.

Authors:  Ikuya Yamada; Akihiko Takamatsu; Hidekazu Ikeno
Journal:  Sci Technol Adv Mater       Date:  2018-02-19       Impact factor: 8.090

2.  A combinatory ferroelectric compound bridging simple ABO3 and A-site-ordered quadruple perovskite.

Authors:  Jianfa Zhao; Jiacheng Gao; Wenmin Li; Yuting Qian; Xudong Shen; Xiao Wang; Xi Shen; Zhiwei Hu; Cheng Dong; Qingzhen Huang; Lipeng Cao; Zhi Li; Jun Zhang; Chongwen Ren; Lei Duan; Qingqing Liu; Richeng Yu; Yang Ren; Shih-Chang Weng; Hong-Ji Lin; Chien-Te Chen; Liu-Hao Tjeng; Youwen Long; Zheng Deng; Jinlong Zhu; Xiancheng Wang; Hongming Weng; Runze Yu; Martha Greenblatt; Changqing Jin
Journal:  Nat Commun       Date:  2021-02-02       Impact factor: 14.919

3.  On the energy scale involved in the metal to insulator transition of quadruple perovskite EuCu3Fe4O12: infrared spectroscopy and ab-initio calculations.

Authors:  B Brière; A Kalinko; I Yamada; P Roy; J B Brubach; R Sopracase; M Zaghrioui; V Ta Phuoc
Journal:  Sci Rep       Date:  2016-06-27       Impact factor: 4.379

Review 4.  Novel catalytic properties of quadruple perovskites.

Authors:  Ikuya Yamada
Journal:  Sci Technol Adv Mater       Date:  2017-07-27       Impact factor: 8.090

  4 in total

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