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首页> 外文期刊>Physical Review. B, Condensed Matter >Magnetic-field-induced decrease of the spin Peltier effect in Pt/Y_3Fe_5O_(12) system at room temperature
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Magnetic-field-induced decrease of the spin Peltier effect in Pt/Y_3Fe_5O_(12) system at room temperature

机译:在室温下Pt / Y_3FE_5O_(12)系统中纺丝诱导的旋转珀耳帖效应的降低

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We report the observation of magnetic-field-induced decrease of the spin Peltier effect (SPE) in a junction of a paramagnetic metal Pt and a ferrimagnetic insulator Y_3Fe_5O_(12) (YIG) at room temperature. For driving the SPE, spin currents are generated via the spin Hall effect from applied charge currents in the Pt layer, and injected into the adjacent thick YIG film. The resultant temperature modulation is detected by a commonly used thermocouple attached to the Pt/YIG junction. The output of the thermocouple shows sign reversal when the magnetization is reversed and linearly increases with the applied current, demonstrating the detection of the SPE signal.We found that the SPE signal decreases with the magnetic field. The observed decreasing rate was found to be comparable to that of the spin Seebeck effect (SSE), suggesting the dominant and similar contribution of the low-energy magnons in the SPE as in the SSE.
机译:我们在室温下报道了在步进金属Pt和亚铁磁性绝缘体Y_3FE_5O_(12)(YIG)的结合物中的旋转珀耳蛋白效应(SPE)的磁场诱导降低的观察。为了驱动SPE,通过从PT层中的施加的电荷电流产生旋转霍尔效果产生自旋电流,并注入相邻的厚YIG膜中。通过连接到Pt / Yig结的常用热电偶检测所得温度调制。热电偶的输出显示当磁化反转并用施加的电流线性增加时,符号反转,证明了SPE信号的检测。我们发现SPE信号随磁场而减小。发现观察到的降低率与Spin Seebeck效应(SSE)的降低相当,表明低能量氧化荡在SSE中的优势和类似贡献。

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  • 来源
    《Physical Review. B, Condensed Matter 》 |2017年第18期| 184422.1-184422.5| 共5页
  • 作者单位

    Institute for Materials Research Tohoku University Sendai 980-8577 Japan;

    Institute for Materials Research Tohoku University Sendai 980-8577 Japan National Institute for Materials Science Tsukuba 305-0047 Japan;

    Institute for Materials Research Tohoku University Sendai 980-8577 Japan Advanced Institute for Materials Research Tohoku University Sendai 980-8577 Japan;

    Institute for Materials Research Tohoku University Sendai 980-8577 Japan;

    National Institute for Materials Science Tsukuba 305-0047 Japan PRESTO Japan Science and Technology Agency Saitama 332-0012 Japan Center for Spintronics Research Network Tohoku University Sendai 980-8577 Japan;

    Institute for Materials Research Tohoku University Sendai 980-8577 Japan Advanced Institute for Materials Research Tohoku University Sendai 980-8577 Japan Center for Spintronics Research Network Tohoku University Sendai 980-8577 Japan Advanced Science Research Center Japan Atomic Energy Agency Tokai 319-1195 Japan;

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