Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires
碩士 === 國立中興大學 === 奈米科學研究所 === 101 === In our investigation, we use the sol-gel method in coordination with anodic aluminum oxide (AAO) as a substrate to prepare nanowire arrays of CuMn2-xMgxO4(x=0、0.2、0.5、0.8). First, we observe the morphology of nanowries via field emission scanning electron micros...
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ndltd-TW-101NCHU57590032018-04-10T17:23:05Z http://ndltd.ncl.edu.tw/handle/sjf772 Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires CuMn2-xMgxO4(x=0~0.8)奈米線的製備及其磁性的研究 Po-Chien Cheng 鄭博謙 碩士 國立中興大學 奈米科學研究所 101 In our investigation, we use the sol-gel method in coordination with anodic aluminum oxide (AAO) as a substrate to prepare nanowire arrays of CuMn2-xMgxO4(x=0、0.2、0.5、0.8). First, we observe the morphology of nanowries via field emission scanning electron microscope (FE-SEM) and high resolution transmission electron microscope (HR-TEM). The nanowires'' diameter is about 65±5nm, and their length is about 44μm. Second, we use selected area diffraction and X-ray powder diffraction to study the crystal structure and lattice constants. Both bulks and nanowires of CuMn2-xMgxO4(x=0、0.2、0.5、0.8) are ferromagnetism. The speculation of the reduction of Curie temperature for nanowires is due to finite-size effects. The scaling theory ξ(T)=ξ_0 [1-T/(T_C (∞) )]^(-ν)proposed by Fisher et al. was used to describe the finite-size effects in the critical region. With the increasing Mg2+ concentration, the couplings among Mn3+/ Mn4+ ions decrease that results in the decrease of Curie temperature and spin correlation length. Ming-Der Lan 藍明德 2013 學位論文 ; thesis 54 zh-TW |
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碩士 === 國立中興大學 === 奈米科學研究所 === 101 === In our investigation, we use the sol-gel method in coordination with anodic aluminum oxide (AAO) as a substrate to prepare nanowire arrays of CuMn2-xMgxO4(x=0、0.2、0.5、0.8). First, we observe the morphology of nanowries via field emission scanning electron microscope (FE-SEM) and high resolution transmission electron microscope (HR-TEM). The nanowires'' diameter is about 65±5nm, and their length is about 44μm. Second, we use selected area diffraction and X-ray powder diffraction to study the crystal structure and lattice constants. Both bulks and nanowires of CuMn2-xMgxO4(x=0、0.2、0.5、0.8) are ferromagnetism. The speculation of the reduction of Curie temperature for nanowires is due to finite-size effects. The scaling theory ξ(T)=ξ_0 [1-T/(T_C (∞) )]^(-ν)proposed by Fisher et al. was used to describe the finite-size effects in the critical region. With the increasing Mg2+ concentration, the couplings among Mn3+/ Mn4+ ions decrease that results in the decrease of Curie temperature and spin correlation length.
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author2 |
Ming-Der Lan |
author_facet |
Ming-Der Lan Po-Chien Cheng 鄭博謙 |
author |
Po-Chien Cheng 鄭博謙 |
spellingShingle |
Po-Chien Cheng 鄭博謙 Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires |
author_sort |
Po-Chien Cheng |
title |
Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires |
title_short |
Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires |
title_full |
Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires |
title_fullStr |
Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires |
title_full_unstemmed |
Synthesis and Magnetism of CuMn2-xMgxO4(x=0~0.8) Nanowires |
title_sort |
synthesis and magnetism of cumn2-xmgxo4(x=0~0.8) nanowires |
publishDate |
2013 |
url |
http://ndltd.ncl.edu.tw/handle/sjf772 |
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