首页> 外文期刊>Journal of the American Ceramic Society >Self-Bias Response of Lead-Free (1-x)[0.948 K_(0.5)Na_(0.5)NbO_3-0.052 LiSb0_3]-xNi_(0.8)Zn_(0.2)Fe_2O_4-Nickel Magnetoelectric Laminate Composites
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Self-Bias Response of Lead-Free (1-x)[0.948 K_(0.5)Na_(0.5)NbO_3-0.052 LiSb0_3]-xNi_(0.8)Zn_(0.2)Fe_2O_4-Nickel Magnetoelectric Laminate Composites

机译:无铅(1-x)[0.948 K_(0.5)Na_(0.5)NbO_3-0.052 LiSb0_3] -xNi_(0.8)Zn_(0.2)Fe_2O_4-镍磁电层压复合材料的自偏压响应

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摘要

This study reports the magnetoelectric (ME) response of lead-free particulate composites given as (1-x)[0.948 K_(0.5)Na_(0.5)NbO_3-0.052 LiSb0_3]-xNi_(0.8)Zn_(0.2)Fe_2O_4 (KNNLS-NZF) and bimorph laminates given as KNNLS-NZF/Ni/KNNLS-NZF. The particulate ME composites were found to exhibit island-matrix mi-crostructure as confirmed by scanning electron microscopy and elemental mapping. Detailed investigations were conducted on optimization of the magnitude of magnetic and piezoelectric properties by varying the sintering condition and NZF mole fraction. It was found that longitudinal piezoelectric strain coefficient d_(33) and electromechanical coupling factor k_p decreased with increasing NZF concentration. On the other hand, the magnitude of saturation magnetization M_s, remnant magnetization M_r, magnetic permeability μ, and magnetostriction λ Was found to increase with increasing NZF fraction. The composition 0.7 KNNLS-0.3 NZF sintered at 1060℃ was found to exhibit d_(33) of 73 pC/N, M_s of 19 emu/g, and maximum ME coefficient α_E of 20.14 mV/cm • Oe under H_(ac) = 1 Oe at 1 kHz. The bimorph laminates were fabricated by embedding Ni plate between (1-x)KNNLS-xNZF disks with varying electrical connections to achieve radial and bending modes. The radial mode laminates were found to exhibit typical ME response without any self-bias effect with maximum α_E of 261.3 mV/cm • Oe and high DC magnetic field sensitivity of 1 μT at 1 kHz. The bending mode laminates were found to exhibit self-biased ME response whose magnitude and shape was dependent upon the NZF concentration.
机译:这项研究报告了无铅颗粒复合材料的磁电(ME)响应,表示为(1-x)[0.948 K_(0.5)Na_(0.5)NbO_3-0.052 LiSb0_3] -xNi_(0.8)Zn_(0.2)Fe_2O_4(KNNLS- NZF)和双压电晶片层压板,命名为KNNLS-NZF / Ni / KNNLS-NZF。如通过扫描电子显微镜法和元素图谱所证实的,发现颗粒状ME复合物表现出岛基质微结构。通过改变烧结条件和NZF摩尔分数对优化磁和压电性能进行了详细研究。发现随着NZF浓度的增加,纵向压电应变系数d_(33)和机电耦合系数k_p减小。另一方面,发现饱和磁化强度M_s,剩余磁化强度M_r,磁导率μ和磁致伸缩λ的大小随着NZF分数的增加而增加。发现在1060℃烧结的0.7 KNNLS-0.3 NZF合金的d_(33)为73 pC / N,M_s为19 emu / g,最大ME系数α_E为20.14 mV / cm•在H_(ac)=下Oe = 1 kHz时1 Oe。通过将Ni板嵌入具有不同电连接的(1-x)KNNLS-xNZF圆盘之间以实现径向和弯曲模式,来制造双压电晶片层压板。发现径向模式层压板表现出典型的ME响应,没有任何自偏压效应,最大α_E为261.3 mV / cm•Oe,在1 kHz时具有1μT的高DC磁场灵敏度。发现弯曲模式层压材料表现出自偏置的ME响应,其大小和形状取决于NZF浓度。

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  • 来源
    《Journal of the American Ceramic Society》 |2011年第11期|p.3889-3899|共11页
  • 作者单位

    Center for Energy Harvesting Materials and Systems (CEHMS), Department of Materials Science and Engineering, Virginia Polytechnic Institute and State University, Blacksburg, VA 24061, USA;

    Center for Energy Harvesting Materials and Systems (CEHMS), Department of Materials Science and Engineering, Virginia Polytechnic Institute and State University, Blacksburg, VA 24061, USA;

    Center for Energy Harvesting Materials and Systems (CEHMS), Department of Materials Science and Engineering, Virginia Polytechnic Institute and State University, Blacksburg, VA 24061, USA;

    Center for Energy Harvesting Materials and Systems (CEHMS), Department of Materials Science and Engineering, Virginia Polytechnic Institute and State University, Blacksburg, VA 24061, USA;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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