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Magnetic Fe@FeOx Fe@C and α-Fe2O3 Single-Crystal Nanoblends Synthesized by Femtosecond Laser Ablation of Fe in Acetone

机译:飞秒激光烧蚀丙酮中的铁可合成磁性Fe @ FeOxFe @ C和α-Fe2O3单晶纳米掺合物

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摘要

There are few reports on zero-field-cooled (ZFC) magnetization measurements for Fe@FeOx or FeOx particles synthesized by laser ablation in liquids (LAL) of Fe, and the minimum blocking temperature (TB) of 120 K reported so far is still much higher than those of their counterparts synthesized by chemical methods. In this work, the minimum blocking temperature was lowered to 52 K for 4–5 nm α-Fe2O3 particles synthesized by femtosecond laser ablation of Fe in acetone. The effective magnetic anisotropy energy density (Keff) is calculated to be 2.7–5.4 × 105 J/m3, further extending the Keff values for smaller hematite particles synthesized by different methods. Large amorphous-Fe@α-Fe2O3 and amorphous-Fe@C particles of 10–100 nm in diameter display a soft magnetic behavior with saturation magnetization (Ms) and coercivities (Hc) values of 72.5 emu/g and 160 Oe at 5 K and 61.9 emu/g and 70 Oe at 300 K, respectively, which mainly stem from the magnetism of amorphous Fe cores. Generally, the nanoparticles obtained by LAL are either amorphous or polycrystalline, seldom in a single-crystalline state. This work also demonstrates the possibility of synthesizing single-crystalline α-Fe2O3 hematite crystals of several nanometers with (104), (113), (116) or (214) crystallographic orientations, which were produced simultaneously with other products including carbon encapsulated amorphous Fe (a-Fe@C) and Fe@FeOx core-shell particles by LAL in one step. Finally, the formation mechanisms for these nanomaterials are proposed and the key factors in series events of LAL are discussed.
机译:关于通过激光烧蚀在Fe的液体(LAL)中合成的Fe @ FeOx或FeOx颗粒的零场冷却(ZFC)磁化测量的报道很少,到目前为止,仍然报道了120 K的最低阻塞温度(TB)远远高于化学方法合成的同类产品。在这项工作中,通过飞秒激光烧蚀丙酮中的Fe合成的4-5 nmα-Fe2O3颗粒,其最低阻隔温度降至52K。有效磁各向异性能量密度(Keff)计算为2.7–5.4×10 5 J / m 3 ,进一步扩展了由不同方法合成的较小赤铁矿粒子的Keff值方法。直径为10–100 nm的大型非晶Fe @α-Fe2O3和非晶Fe @ C颗粒表现出软磁行为,在5 K下的饱和磁化强度(Ms)和矫顽力(Hc)值为72.5 emu / g和160 Oe在300 K时分别为61.9 emu / g和70 Oe,这主要来自非晶铁芯的磁性。通常,通过LAL获得的纳​​米颗粒为非晶态或多晶态,很少处于单晶态。这项工作还证明了合成具有(104),(113),(116)或(214)晶体取向的几纳米单晶α-Fe2O3赤铁矿晶体的可能性,这些晶体是与其他产品同时生产的,包括碳包封的非晶铁(a-Fe @ C)和Fe @ FeOx核壳粒子通过LAL一步完成。最后,提出了这些纳米材料的形成机理,并讨论了LAL系列事件的关键因素。

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