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Magneto-transport Properties of Gd-doped In2O3 Thin Films

机译:掺d In2O3薄膜的磁输运性质

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Dilute Magnetic Semiconductors (DMS) are a rare group of promising materials that utilize both the electronic charge - a characteristic of semiconductor materials - and the electronic spin - a characteristic of magnetic materials. Oxide based DMS show promise of ferromagnetism (FM) at room temperature. It has been found that doping metal oxides such as ZnO, TiO_2, and In_2O_3 with magnetic ions such as Fe, Co, Mn, and Cr produces DMS, which exhibit FM above room temperature. In_2O_3, a transparent opto-electronic material, is an interesting prospect for spintronics due to a unique combination of magnetic, electrical, and optical properties. High quality thin films of rare earth magnetic gadolinium (Gd) doped oxide-based DMS materials have been grown by pulsed laser deposition (PLD) technique on various substrates such as single crystal of sapphire (001) and quartz under suitable growth conditions of substrate temperature and oxygen pressure in the PLD chamber. The effect of rare earth magnetic doping on the structural and electro - magnetic properties of these films has been studied using Raman Spectroscopy, X-Ray Diffraction, Scanning Electron Microscopy, and Magneto - Transport. An X- ray diffraction study reveals that these films are single phase and highly oriented. Characteristic Raman peaks typical of indium oxide are observed at 496 and 627 cm~(-1). We have observed high magnetoresistance (~18 %) at a relatively small field of 1.3 Tesla for the films with 10 % gadolinium. A detailed study of temperature and magnetic field dependent resistivity, magnetoresistance, and Hall Effect will be presented.
机译:稀磁半导体(DMS)是极少数有前途的材料,它们同时利用电荷-半导体材料的一种特性-和电子自旋-磁性材料的一种特性。氧化物基DMS在室温下显示出铁磁性(FM)的前景。已经发现,用诸如Fe,Co,Mn和Cr的磁性离子掺杂诸如ZnO,TiO_2和In_2O_3的金属氧化物产生了DMS,其在室温以上显示出FM。 In_2O_3是一种透明的光电材料,由于磁性,电学和光学特性的独特结合,是自旋电子学的一个有趣前景。已通过脉冲激光沉积(PLD)技术在合适的衬底温度生长条件下在各种衬底(例如蓝宝石(001)和石英)上生长了高质量的稀土磁性magnetic(Gd)掺杂氧化物基DMS材料薄膜。和PLD腔室中的氧气压力。稀土磁掺杂对这些薄膜的结构和电磁性能的影响已使用拉曼光谱,X射线衍射,扫描电子显微镜和磁传输进行了研究。 X射线衍射研究表明,这些薄膜是单相的,并且取向性很高。在496和627 cm〜(-1)处观察到典型的氧化铟特征拉曼峰。对于含10%Tesla的薄膜,我们在1.3特斯拉的较小磁场下观察到了较高的磁阻(〜18%)。将详细介绍温度和磁场相关的电阻率,磁阻和霍尔效应。

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