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首页> 外文期刊>Journal of Applied Physics >Cross-plane thermoelectric transport in p-type La0.67Sr0.33MnO3/LaMnO3 oxide metal/semiconductor superlattices
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Cross-plane thermoelectric transport in p-type La0.67Sr0.33MnO3/LaMnO3 oxide metal/semiconductor superlattices

机译:p型La0.67Sr0.33MnO3 / LaMnO3氧化物金属/半导体超晶格中的跨平面热电传输

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摘要

The cross-plane thermoelectric transport properties of La0.67Sr0.33MnO3 (LSMO)/LaMnO3 (LMO) oxide metal/semiconductor superlattices were investigated. The LSMO and LMO thin-film depositions were performed using pulsed laser deposition to achieve low resistivity constituent materials for LSMO/LMO superlattice heterostructures on (100)-strontium titanate substrates. X-ray diffraction and high-resolution reciprocal space mapping indicate that the superlattices are epitaxial and pseudomorphic. Cross-plane devices were fabricated by etching cylindrical pillar structures in superlattices using inductively, this coupled-plasma reactive-ion etching. The cross-plane electrical conductivity data for LSMO/LMO superlattices reveal a lowering of the effective barrier height to 223?meV as well as an increase in cross-plane conductivity by an order of magnitude compared to high resistivity superlattices. These results suggest that controlling the oxygen deficiency in the constituent materials enables modification of the effective barrier height and increases the cross-plane conductivity in oxide superlattices. The cross-plane LSMO/LMO superlattices showed a giant Seebeck coefficient of 2560?μV/K at 300?K that increases to 16?640?μV/K at 360?K. The giant increase in the Seebeck coefficient with temperature may include a collective contribution from the interplay of charge, spin current, and phonon drag. The low resistance oxide superlattices exhibited a room temperature cross-plane thermal conductivity of 0.92?W/m?K, this indicating that the suppression of thermal conductivities due to the interfaces is preserved in both low and high resistivity superlattices. The high Seebeck coefficient, the order of magnitude improvement in cross-plane conductivity, and the low thermal conductivity in LSMO/LMO superlattices resulted in a two order of magnitude increase in cr- ss-plane power factor and thermoelectric figure of merit (ZT), compared to the properties of superlattices with higher resistivity that were reported previously. The temperature dependence of the cross-plane power factor in low resistance superlattices suggests a direction for further investigations of the potential LSMO/LMO oxide superlattices for thermoelectric devices.
机译:La 0.67 Sr 0.33 MnO 3 (LSMO)/ LaMnO 3 (LMO)的跨平面热电输运特性)研究了氧化物金属/半导体超晶格。使用脉冲激光沉积进行LSMO和LMO薄膜沉积,以在(100)-钛酸锶衬底上实现用于LSMO / LMO超晶格异质结构的低电阻率组成材料。 X射线衍射和高分辨率互易空间映射表明,超晶格是外延的和伪的。通过使用电感耦合等离子体反应离子刻蚀在超晶格中刻蚀圆柱柱结构来制造横平面器件。 LSMO / LMO超晶格的横面电导率数据显示,与高电阻率超晶格相比,有效势垒高度降低到223?meV,并且横断面电导率提高了一个数量级。这些结果表明,控制组成材料中的氧缺乏使得能够改变有效势垒高度并增加氧化物超晶格中的横断面电导率。横断面LSMO / LMO超晶格在300?K处显示2560?μV/ K的巨大塞贝克系数,在360?K时增加到16?640?V / K。塞贝克系数随温度的巨大增加可能包括电荷,自旋电流和声子阻力相互作用的共同贡献。低电阻氧化物超晶格的室温截面热导率为0.92Ω·W / m·K,这表明在低和高电阻率的超晶格中都保留了由于界面引起的导热率的抑制。 Seebeck系数高,跨平面电导率的量级提高以及LSMO / LMO超晶格的低热导率导致Crss平面功率因数和热电品质因数(ZT)增大两个数量级与先前报道的具有更高电阻率的超晶格的性能相比。低电阻超晶格中横切面功率因数的温度依赖性为进一步研究热电器件潜在的LSMO / LMO氧化物超晶格提供了一个方向。

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  • 来源
    《Journal of Applied Physics》 |2013年第19期|193702.1-193702.8|共8页
  • 作者单位

    School of Electrical and Computer Engineering, Purdue University, West Lafayette, Indiana 47907, USA|c|;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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