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Flexible epsilon-Fe2O3-Terephthalate Thin-Film Magnets through ALD/MLD

机译:通过ALD / MLD柔性EPSILON-FE2O3-对苯二甲酸酯薄膜磁铁

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摘要

Pliable and lightweight thin-film magnets performing at room temperature are indispensable ingredients of the next-generation flexible electronics. However, conventional inorganic magnets based on f-block metals are rigid and heavy, whereas the emerging organic/molecular magnets are inferior regarding their magnetic characteristics. Here we fuse the best features of the two worlds, by tailoring epsilon-Fe2O3-terephthalate superlattice thin films with inbuilt flexibility due to the thin organic layers intimately embedded within the ferrimagnetic epsilon-Fe2O3 matrix; these films are also sustainable as they do not contain rare heavy metals. The films are grown with sub-nanometer-scale accuracy from gaseous precursors using the atomic/molecular layer deposition (ALD/MLD) technique. Tensile tests confirm the expected increased flexibility with increasing organic content reaching a 3-fold decrease in critical bending radius (2.4 +/- 0.3 mm) as compared to epsilon-Fe2O3 thin film (7.7 +/- 0.3 mm). Most remarkably, these hybrid epsilon-Fe2O3-terephthalate films do not compromise the exceptional intrinsic magnetic characteristics of the epsilon-Fe2O3 phase, in particular the ultrahigh coercive force (similar to 2 kOe) even at room temperature.
机译:在室温下进行的柔韧性和轻质薄膜磁体是下一代柔性电子产品的不可或缺的成分。然而,基于F阻滞金属的常规无机磁体是刚性的并且重,而新出现的有机/分子磁体对其磁特性较差。在这里,我们融合了两个世界的最佳特征,通过剪裁Epsilon-Fe2O3-对苯二甲酸酯超晶型薄膜,由于薄薄的有机层紧密地嵌入在Ferrimagnetic epsilon-Fe2O3基质中;这些薄膜也可持续,因为它们不含罕见的重金属。使用原子/分子层沉积(ALD / MLD)技术从气态前体(ALD / MLD)技术以子纳米级精度生长薄膜。拉伸试验确认预期增加的柔韧性随着与Epsilon-Fe2O3薄膜(7.7 +/- 0.3mm)相比,增加临界弯曲半径(2.4 +/- 0.3mm)的有机含量增加3倍。最显着的是,这些杂交EPSILON-Fe2O3-对苯二甲酸酯薄膜不会损害EPSILON-FE2O3相的特殊内在磁特性,特别是即使在室温下也是超高矫顽力(类似于2koe)。

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