リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

大学・研究所にある論文を検索できる 「Electrochemical control and protonation of the strontium iron oxide SrFeOy by using proton-conducting electrolyte」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

コピーが完了しました

URLをコピーしました

論文の公開元へ論文の公開元へ
書き出し

Electrochemical control and protonation of the strontium iron oxide SrFeOy by using proton-conducting electrolyte

Isoda, Yosuke Kan, Daisuke Ogura, Yumie Majima, Takuya Tsuchiya, Takashi Shimakawa, Yuichi 京都大学 DOI:10.1063/5.0083209

2022.02.28

概要

To electrochemically control structural and transport properties of oxygen-deficient perovskite SrFeOy (2.5 ≦ y ≦ 3) (SFO) epitaxial films, we employed electric-field-effect transistor structures in which the proton-conducting solid electrolyte Nafion is used as a gate insulator. When a positive gate voltage (VGS) is applied and protons are injected toward the film channel layer, the SFO films are electrochemically reduced, leading to increases in the channel resistance. On the other hand, when a negative VGS is applied and protons are removed, the SFO films are oxidized, and as a result, the channel resistances decrease. In addition, we found that the electrochemically reduced SFO films accommodate protons, forming the proton-containing oxide HxSrFeO₂.₅ whose proton concentration is determined by elastic recoil detection analysis to be x ∼ 0.11. Our results indicate the usefulness of the proton-conducting solid electrolyte for electrochemically controlling transition metal oxides and for exploring proton-containing oxides.

この論文で使われている画像

参考文献

M. Imada, A. Fujimori, and Y. Tokura, Rev. Mod. Phys. 70, 1039 (1998).

T. Tsuchiya, K. Terabe, M. Ochi, T. Higuchi, M. Osada, Y. Yamashita, S. Ueda,

and M. Aono, ACS Nano 10, 1655 (2016).

H. Ohta, Y. Sato, T. Kato, S. Kim, K. Nomura, Y. Ikuhara, and H. Hosono,

Nat. Commun. 1, 118 (2010).

Z. Li, S. Shen, Z. Tian, K. Hwangbo, M. Wang, Y. Wang, F. M. Bartram, L. He,

Y. Lyu, Y. Dong, G. Wan, H. Li, N. Lu, J. Zang, H. Zhou, E. Arenholz, Q. He,

L. Yang, W. Luo, and P. Yu, Nat. Commun. 11, 184 (2020).

M. Jo, H. J. Lee, C. Oh, H. Yoon, J. Y. Jo, and J. Son, Adv. Funct. Mater. 28,

1802003 (2018).

K. Shibuya and A. Sawa, Adv. Electron. Mater. 2, 1500131 (2016).

Appl. Phys. Lett. 120, 091601 (2022); doi: 10.1063/5.0083209

Published under an exclusive license by AIP Publishing

ARTICLE

scitation.org/journal/apl

J.-T. Yang, C. Ge, J.-Y. Du, H.-Y. Huang, M. He, C. Wang, H.-B. Lu, G.-Z.

Yang, and K.-J. Jin, Adv. Mater. 30, 1801548 (2018).

M. Wang, X. Sui, Y. Wang, Y.-H. Juan, Y. Lyu, H. Peng, T. Huang, S. Shen, C.

Guo, J. Zhang, Z. Li, H.-B. Li, N. Lu, A. T. N’Diaye, E. Arenholz, S. Zhou, Q.

He, Y.-H. Chu, W. Duan, and P. Yu, Adv. Mater. 31, 1900458 (2019).

J. Tian, H. Wu, Z. Fan, Y. Zhang, S. J. Pennycook, D. Zheng, Z. Tan, H. Guo,

P. Yu, X. Lu, G. Zhou, X. Gao, and J. Liu, Adv. Mater. 31, 1903679 (2019).

10

C. Ge, C. Liu, Q. Zhou, Q. Zhang, J. Du, J. Li, C. Wang, L. Gu, G. Yang, and K.

Jin, Adv. Mater. 31, 1900379 (2019).

11

N. Lu, P. Zhang, Q. Zhang, R. Qiao, Q. He, H.-B. Li, Y. Wang, J. Guo, D.

Zhang, Z. Duan, Z. Li, M. Wang, S. Yang, M. Yan, E. Arenholz, S. Zhou, W.

Yang, L. Gu, C.-W. Nan, J. Wu, Y. Tokura, and P. Yu, Nature 546, 124 (2017).

12

M. Wang, S. Shen, J. Ni, N. Lu, Z. Li, H.-B. Li, S. Yang, T. Chen, J. Guo, Y.

Wang, H. Xiang, and P. Yu, Adv. Mater. 29, 1703628 (2017).

13

H.-B. Li, F. Lou, Y. Wang, Y. Zhang, Q. Zhang, D. Wu, Z. Li, M. Wang, T.

Huang, Y. Lyu, J. Guo, T. Chen, Y. Wu, E. Arenholz, N. Lu, N. Wang, Q. He, L.

Gu, J. Zhu, C.-W. Nan, X. Zhong, H. Xiang, and P. Yu, Adv. Sci. 6, 1901432

(2019).

14

J. B. MacChesney, R. C. Sherwood, and J. F. Potter, J. Chem. Phys. 43, 1907

(1965).

15

Y. Takeda, K. Kanno, T. Takada, O. Yamamoto, M. Takano, N. Nakayama, and

Y. Bando, J. Solid State Chem. 63, 237 (1986).

16

J. P. Hodges, S. Short, J. D. Jorgensen, X. Xiong, B. Dabrowski, S. M. Mini, and

C. W. Kimball, J. Solid State Chem. 151, 190 (2000).

17

E. K. Hemery, G. V. M. Williams, and H. J. Trodahl, Phys. Rev. B 75, 092403

(2007).

18

G. V. M. Williams, E. K. Hemery, and D. McCann, Phys. Rev. B 79, 024412

(2009).

19

M. Reehuis, C. Ulrich, A. Maljuk, C. Niedermayer, B. Ouladdiaf, A. Hoser, T.

Hofmann, and B. Keimer, Phys. Rev. B 85, 184109 (2012).

20

K. Matsumoto, D. Kan, N. Ichikawa, S. Hosokawa, H. Kageyama, and Y.

Shimakawa, Chem. Lett. 42, 732 (2013).

21

K. Hirai, D. Kan, N. Ichikawa, K. Mibu, Y. Yoda, M. Andreeva, and Y.

Shimakawa, Sci. Rep. 5, 7894 (2015).

22

M. Schmidt and S. J. Campbell, J. Solid State Chem. 156, 292 (2001).

23

P. Adler, A. Lebon, V. Damljanovic´, C. Ulrich, C. Bernhard, A. V. Boris, A.

Maljuk, C. T. Lin, and B. Keimer, Phys. Rev. B 73, 094451 (2006).

24

A. Khare, D. Shin, T. S. Yoo, M. Kim, T. D. Kang, J. Lee, S. Roh, I.-H. Jung, J.

Hwang, S. W. Kim, T. W. Noh, H. Ohta, and W. S. Choi, Adv. Mater. 29,

1606566 (2017).

25

A. Khare, J. Lee, J. Park, G.-Y. Kim, S.-Y. Choi, T. Katase, S. Roh, T. S. Yoo, J.

Hwang, H. Ohta, J. Son, and W. S. Choi, ACS Appl. Mater. Interfaces 10, 4831

(2018).

26

H. Yamada, M. Kawasaki, and Y. Tokura, Appl. Phys. Lett. 80, 622 (2002).

27

M. Mayer, “SIMNRA user’s guide,” Report No. IPP 9/113 (Max-PlanckInstitut f€

ur Plasmaphysik, Garching, Germany, 1997).

120, 091601-5

...

参考文献をもっと見る

全国の大学の
卒論・修論・学位論文

一発検索!

この論文の関連論文を見る