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对纳米α-Fe₂O₃晶格振动和电子跃迁的有限尺寸效应的理解。

Understanding of the finite size effects on lattice vibrations and electronic transitions of nano alpha-Fe2O3.

作者信息

Lu Li, Li Liping, Wang Xiaojing, Li Guangshe

机构信息

Key Lab of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Science, Fuzhou 350002, People's Republic of China.

出版信息

J Phys Chem B. 2005 Sep 15;109(36):17151-6. doi: 10.1021/jp052780+.

Abstract

Alpha-Fe(2)O(3) nanocrystals with controlled diameters ranging from 10 to 63 nm were successfully prepared. The finite size effects in alpha-Fe(2)O(3) nanocrystals were probed by X-ray diffraction, infrared spectroscopy, thermogravimetric analysis, UV-visible spectrum, and magnetization measurements. With a size reduction, alpha-Fe(2)O(3) nanocrystals showed a lattice expansion and an enlarged axial ratio of c/a that is in apparent contradiction to the previous conjecture of high lattice symmetry for alpha-Fe(2)O(3) nanocrystals at small sizes. The surface terminations of alpha-Fe(2)O(3) nanocrystals were found to be highly hydrated with a size dependence that surprisingly follows the surface hydration chemistry of anatase TiO2 nanocrystals reported recently by us. The lattice vibrations, electronic transitions, and magnetic properties of alpha-Fe(2)O(3) nanocrystals were significantly modified by surface hydration and lattice expansion. The finite size effects that occurred in alpha-Fe(2)O(3) nanocrystals at small sizes were first found to give a red shift in frequencies of perpendicular mode at 540 cm(-1), a blue shift in the electronic transition of double exciton process in visible region, and a significant decrease in the coercive force.

摘要

成功制备出直径控制在10至63纳米范围内的α-Fe₂O₃纳米晶体。通过X射线衍射、红外光谱、热重分析、紫外可见光谱和磁化测量对α-Fe₂O₃纳米晶体中的有限尺寸效应进行了探究。随着尺寸减小,α-Fe₂O₃纳米晶体呈现出晶格膨胀以及c/a轴比增大的现象,这与之前关于小尺寸α-Fe₂O₃纳米晶体具有高晶格对称性的推测明显矛盾。发现α-Fe₂O₃纳米晶体的表面终端高度水合,其尺寸依赖性令人惊讶地遵循我们最近报道的锐钛矿TiO₂纳米晶体的表面水合化学。表面水合和晶格膨胀显著改变了α-Fe₂O₃纳米晶体的晶格振动、电子跃迁和磁性。首次发现小尺寸α-Fe₂O₃纳米晶体中出现的有限尺寸效应会使540厘米⁻¹处垂直模式的频率发生红移、可见区域双激子过程的电子跃迁发生蓝移,并使矫顽力显著降低。

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