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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Enabling cobalt ferrite (CoFe2O4) for low magnetic field strain responsivity through Bi3+ substitution: Material for magnetostrictive sensors
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Enabling cobalt ferrite (CoFe2O4) for low magnetic field strain responsivity through Bi3+ substitution: Material for magnetostrictive sensors

机译:通过Bi3 +替换为低磁场应变响应率,使钴铁氧体(CoFe2O4)能响应性:用于磁致伸缩传感器的材料

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摘要

Bismuth-substituted cobalt ferrite, CoBixFe2-xO4 (x = 0, 0.1, 0.2 and 0.3), samples with enhanced magnetostriction behavior were synthesized through a glycine-nitrate based auto-combustion route. The powders were pelletized and sintered at 1450 degrees C for 10 min. The presence of Bi3+ in CoFe2O4 promotes a significant grain growth. The samples with x = 0 and 0.1 are found to be phase pure with cubic spinel structure, whereas a secondary phase (Bi2O3) starts forming beyond this composition due to the low solubility limit of Bi3+ in cobalt ferrite. According to our results, the maximum strain sensitivity (d lambda/dH)(max) for Bi-doped samples (similar to-1.6 x 10(-9) m/A) is considerably higher than that of the parent compound (similar to-1 x 10(-9) m/A) even at lower magnetic-fields. Our work demonstrates the strategy to enhance the strain sensitivity of magnetostrictive sensors at lower applied magnetic fields through sintering of Co-ferrite samples after Bi3+ doping. (C) 2021 Elsevier B.V. All rights reserved.
机译:采用甘氨酸硝酸盐自燃烧法合成了具有增强磁致伸缩性能的铋取代钴铁氧体CoBixFe2-xO4(x=0,0.1,0.2和0.3)。将粉末造粒并在1450℃下烧结10分钟。CoFe2O4中Bi3+的存在促进了显著的晶粒生长。发现x=0和0.1的样品为纯相,具有立方尖晶石结构,而由于Bi3+在钴铁氧体中的溶解度极限较低,在该成分之外开始形成第二相(Bi2O3)。根据我们的结果,即使在较低的磁场下,双掺杂样品(类似于-1.6 x 10(-9)m/A)的最大应变灵敏度(dλ/dH)(max)也远高于母体化合物(类似于-1 x 10(-9)m/A)。我们的工作展示了通过在Bi3+掺杂后烧结Co铁氧体样品,在较低外加磁场下提高磁致伸缩传感器应变灵敏度的策略。(c)2021爱思唯尔B.V.保留所有权利。

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