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Monodisperse NixFe3-xO4 nanospheres: Metal-ion-steered size/composition control mechanism, static magnetic and enhanced microwave absorbing properties

机译:单分散NixFe3-xO4纳米球:金属离子控制的尺寸/组成控制机制,静磁和增强的微波吸收特性

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An easy metal-ion-steered solvothermal method was developed for the one-step synthesis of monodisperse, uniform NixFe3-xO4 polycrystalline nanospheres with tunable sphere diameter (40-400nm) and composition (0 <= x <= 0.245) via changing just Ni2+/Fe3+ molar ratio (gamma). With g increased from 0:1 to 2:1, sphere diameter gradually decreased and crystal size exhibited an inversed U-shaped change tendency, followed by increased Ni/Fe atom ratio from 0% to 0.0888%. An in situ-reduction, coordination precipitation transformation mechanism was proposed to interpret the metal-ion-steered growth. Size-and composition-dependent static magnetic and microwave absorbing properties were systematically investigated. Saturation magnetization declines with g in a Boltzmann model due to the changes of crystal size, sphere diameter, and Ni content. The coercivity reaches a maximum at gamma=0.75:1 because of the critical size of Fe3O4 single domain (25 nm). Studies on microwave absorption reveal that 150-400 nm Fe3O4 nanospheres mainly obey the quarter-wavelength cancellation model with the single-band absorption; 40-135 nm NixFe3-xO4 nanospheres (0 <= x <= 0.245) obey the one and three quarter-wavelength cancellation model with the multi-band absorption. 150 nm Fe3O4 nanospheres exhibit the optimal EM wave-absorbing property with an absorbing band of 8.94 GHz and the maximum R-L of -50.11 dB. (C) 2017 Elsevier B.V. All rights reserved.
机译:开发了一种简单的金属离子引导溶剂热方法,可通过仅改变Ni2 +一步合成单分散,均一的NixFe3-xO4多晶纳米球,其可调球直径(40-400nm)和组成(0 <= x <= 0.245)。 / Fe 3+摩尔比(γ)。随着g从0:1增加到2:1,球体直径逐渐减小,晶体尺寸呈现倒U形变化趋势,随后Ni / Fe原子比从0%增加到0.0888%。提出了一种原位还原配位沉淀转化机制来解释金属离子导向的生长。系统地研究了尺寸和成分相关的静磁和微波吸收特性。由于晶体尺寸,球直径和Ni含量的变化,在Boltzmann模型中,饱和磁化强度随g的降低而降低。由于Fe3O4单畴的临界尺寸(25 nm),矫顽力在gamma = 0.75:1时达到最大值。微波吸收研究表明,150-400 nm Fe3O4纳米球主要服从单波段吸收的四分之一波长抵消模型。 40-135 nm NixFe3-xO4纳米球(0 <= x <= 0.245)服从多波段吸收的四分之一和三分之一波长抵消模型。 150 nm Fe3O4纳米球表现出最佳的EM波吸收性能,吸收带为8.94 GHz,最大R-L为-50.11 dB。 (C)2017 Elsevier B.V.保留所有权利。

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