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BiFeO3 (BFO) is a kind of room temperature multiferroic material with bulk photovoltaic effect, and it has been a research hotspot in the field of multifunctional materials in recent years. The coexistence of the coupling among magnetic, optical, electrical properties brings rich and complex physical connotations. In this work, BiFeO3 thin film is deposited on FTO substrate by pulsed laser deposition, and the solar cell structure with BiFeO3 film used as light absorption layer and Au film serving as electrode is constructed. X-ray diffraction and Raman spectra indicate that the BFO film grown on FTO substrate has a pure phase structure. The experimental results of physical properties indicate that the BFO film possesses good ferromagnetic and ferroelectric properties and obvious photoelectric effect. According to the hysteresis loop, the remanence (Mr) of the sample is 0.8 emu/cm3, and the coercivity (Hc) is 200 Oe at 300 K. In terms of ferroelectricity, the saturation polarization intensity of the sample can reach 0.997 μC/cm2, the residual polarization intensity is 0.337 μC/cm2, and the coercive electric field is 12.45 kV/cm. The above results show that the BFO film has good multiferroic properties. Under solar illumination conditions, the photocurrent density up to 208 mA/cm2 is obtained when a bias voltage 1 V is applied. More importantly, magneto-photocurrent (MPC) effect is found in the BFO film. No matter whether the magnetic field starts to increase from the positive direction or the negative direction, the MPC usually changes with the magnitude of magnetization. When a 1.3 kOe magnetic field is applied, the magneto-photocurrent change rate up to 232.7% is observed under standard solar illumination condition. The results show that the photocurrent of BFO films is greatly improved by a positive magnetic field and negative magnetic field. This magneto-photocurrent effect in BFO thin film comes from the photo-magnetoresistance effect, that is, the photogenerated electrons become spin photoelectrons under the action of an external magnetic field and receive spin-dependent scattering during moving in the conductive band of the material, thus producing the photo-magnetoresistance effect. In addition, the magneto-photocurrent effect is further enhanced by weakening the domain wall scattering of the spin electrons by the magnetic field. This work provides a reference for the modulation effect of magnetic field and light field on the magnetic, optical and electrical properties in multiferroics, and presents a foundation for the research and application of devices in the field of multifunctional optoelectronic materials.
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Keywords:
- bismuth ferrate /
- photovoltaic effect /
- magnetic field /
- spintronic
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Zhai H R, Du Y Y, Han X F, Liu J M, Wang K F, Zhao J H, Deng J J, Zheng H Z, Xing D Y, Xia K, Zhou S M, Su G, Cai J W 2013 Spintronics (Beijing: Science Press) pp459, 460 (in Chinese)
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图 4 在偏压分别为(a), (c) 0 V和(b), (d) 1 V时, 室温下样品的(a), (b)光电流随磁场变化曲线以及(c), (d)
$ {D}_{{\rm{M}}{\rm{P}}{\rm{C}},{\rm{V}}} $ 值随磁场变化的响应曲线Figure 4. Change curves of photocurrent (a), (b) and
$ {D}_{{\rm{M}}{\rm{P}}{\rm{C}},{\rm{V}}} $ (c), (d) with the alteration of magnetic field for the sample at room temperature with the bias of (a), (c) 0 V and (b), (d) 1 V. -
[1] Guo R, You L, Zhou Y, Shiuh L Z, Zou X, Chen L, Ramesh R, Wang J L 2013 Nat. Commun. 4 1990
Google Scholar
[2] Wei M C, Liu M F, Yang L, Xie B, Li X, Wang X Z, Cheng X Y, Zhu Y D, Li Z J, Su Y L, Li M Y, Hu Z Q, Liu J M 2020 Ceram. Int. 46 5126
Google Scholar
[3] Thakoor S 1992 Appl. Phys. Lett. 60 3319
Google Scholar
[4] 张亚菊, 谢忠帅, 郑海务, 袁国亮 2020 物理学报 69 127709
Google Scholar
Zhang Y J, Xie Z S, Zheng H W, Yuan G L 2020 Acta Phys. Sin. 69 127709
Google Scholar
[5] Wang J, Ma J, Yang Y B, Chen M F, Zhang J X, Ma J, Nan C W 2019 ACS Appl. Electron. Mater. 1 862
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[6] Li J K, Ge C, Jin K J, Du J Y, Yang J T, Lu H B, Yang G Z 2017 Appl. Phys. Lett. 110 142901
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[18] Fan Z, Yao K, Wang J 2014 Appl. Phys. Lett. 105 162903
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[19] Basu S R, Martin L W, Chu Y H, Gajek M, Ramesh R, Rai R C, Xu X, Musfeldt J L 2008 Appl. Phys. Lett. 92 091905
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Google Scholar
[27] Tomas L, Kevin A B, Rohit P, Michael D M 2018 Nat. Energy 3 828
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[28] Kevin A B, Axel F P, Zhengshan J Y, Mathieu B, Rongrong C, Jonathan P M, David P M, Robert L Z H, Colin D B, Tomas L, Ian M P, Maxmillian C M, Nicholas R, Rohit P, Sarah S, Duncan H, Wen M, Farhad M, Henry J S, Tonio B, Zachary C H, Stacey F B, Michael D M 2017 Nat. Energy 2 17009
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Google Scholar
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[34] 蔡田怡, 雎胜 2018 物理学报 67 157801
Google Scholar
Cai T Y, Ju S 2018 Acta Phys. Sin. 67 157801
Google Scholar
[35] Yang S Y, Seidel J, Byrnes S J, Shafer P, Yang C H, Rossell M D, Yu P, Chu Y H, Scott J F, Ager III J W, Martin L W, Ramesh R 2010 Nat. Nanotechnol. 5 143
Google Scholar
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Google Scholar
[38] Ma G, Jiang W, Sun W, Yan Z, Sun B, Li S, Zhang M, Wang X, Gao A, Dai J, Liu Z, Li P, Tang W 2021 Phys. Scr. 96 125823
Google Scholar
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Google Scholar
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Google Scholar
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Google Scholar
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Google Scholar
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Google Scholar
[47] Sagar R U R, Zhang X, Wang J, Xiong C 2014 J. Appl. Phys. 115 123708
Google Scholar
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[49] Wang J, Chepelianskii A, Gao F, Greenham N C 2012 Nat. Commun. 3 1191
Google Scholar
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Google Scholar
[51] Devir-Wolfman A H, Khachatryan B, Gautam B R, Tzabary L, Keren A, Tessler N, Vardeny Z V, Ehrenfreund E 2014 Nat. Commun. 5 4529
Google Scholar
[52] Muneeswaran M, Giridharan N V 2014 J. Appl. Phys. 115 214109
Google Scholar
[53] Sharma G N, Dutta S, Singh S K, Chatterjee R 2016 Mater. Res. Express 3 106202
Google Scholar
[54] Wang J J, Hu J M, Yang T N, Feng M, Zhang J X, Chen L Q, Nan C W 2014 Sci. Rep. 4 4553
Google Scholar
[55] Wei S, Wenxuan W, Dong C, Zhenxiang C, Tingting J, Yuanxu W 2019 J. Phys. Chem. C 123 16393
Google Scholar
[56] Tan K H, Chen Y W, Van Nguyen C, et al. 2019 ACS Appl. Mater. Interfaces 11 1655
Google Scholar
[57] Lu Y, Fan Z, Liang F, Yang Z, Liang Z T, Zeyu Z, Guohong M, Daniel S, Andrivo R, Le W, Lei C, Andrew M R, Junling W 2018 Sci. Adv. 4 eaat3438
Google Scholar
[58] 翟宏如, 都有为, 韩秀峰, 刘俊明, 王克锋, 赵建华, 邓加军, 郑厚植, 邢定钰, 夏钶, 周仕明, 苏刚, 蔡建旺 2013 自旋电子学 (北京: 科学出版社) 第459, 460页
Zhai H R, Du Y Y, Han X F, Liu J M, Wang K F, Zhao J H, Deng J J, Zheng H Z, Xing D Y, Xia K, Zhou S M, Su G, Cai J W 2013 Spintronics (Beijing: Science Press) pp459, 460 (in Chinese)
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