Heat generation ability in AC magnetic field of MgAlxFe2-xO4 ferrite powder prepared by sol-gel method

Author(s):  
Hideyuki Hirazawa ◽  
Yoshiki Ito ◽  
Deleg Sangaa ◽  
Namsrai Tsogbadrakh ◽  
Hiromichi Aono ◽  
...  
2020 ◽  
pp. 174751982095860
Author(s):  
Mina Sakuragi ◽  
Yoshikazu Takahashi ◽  
Keito Ehara ◽  
Katsuki Kusakabe

The aim of this study is to develop self-standing, ultrathin film, nanosheets with high magnetic response for use in a medical device that can be migrated to a target location in the body by using an external magnetic field. First, iron oxide nanoparticles are synthesized by either the sol-gel method or thermal decomposition. The resulting magnetic properties of the nanoparticles show that the thermal decomposition method provides a greater saturation magnetization value than the sol-gel method. Next, the nanoparticles obtained by the thermal decomposition method are embedded into nanosheets of poly(L-lactide) at varying concentrations. Embedding of the nanoparticles in the composite nanosheets is achieved by the application of an external magnetic field. The composite nanosheets are then characterized. The thickness of the nanosheet increases, and the nanoparticles are well dispersed, with an increase in poly (L-lactide) concentration. The NP-embedded nanosheets are imaged by transmission electron microscopy, which reveals thin, long aggregates aligned in collinear line features. X-ray diffraction results indicate that the magnetic hard axis of the nanoparticles in the nanosheets is aligned in parallel to the plane of the nanosheet by magnetic field application during nanosheet preparation. In addition, the nanosheets at high poly (L-lactide) concentrations that had been subjected to a magnetic field during preparation show a slightly greater magnetic response compared with both nanosheets without magnetic field exposure and nanosheets prepared at low poly (L-lactide) concentrations.


2015 ◽  
Vol 44 (10) ◽  
pp. 1298-1299
Author(s):  
Hideyuki Hirazawa ◽  
Syo Yoshikawa ◽  
Hiromichi Aono ◽  
Takashi Naohara ◽  
Tsunehiro Maehara ◽  
...  

2012 ◽  
Vol 60 (5) ◽  
pp. 795-799 ◽  
Author(s):  
Jeoung Yun Kang ◽  
Woo Hyun Kwon ◽  
Seung Wha Lee ◽  
Jae-Gwang Lee ◽  
Byung-Sub Kang ◽  
...  

2011 ◽  
Vol 323 (6) ◽  
pp. 675-680 ◽  
Author(s):  
Hideyuki Hirazawa ◽  
Hiromichi Aono ◽  
Takashi Naohara ◽  
Tsunehiro Maehara ◽  
Mitsunori Sato ◽  
...  

2011 ◽  
Vol 323 (1) ◽  
pp. 88-93 ◽  
Author(s):  
Hiromichi Aono ◽  
Takashi Naohara ◽  
Tsunehiro Maehara ◽  
Hideyuki Hirazawa ◽  
Shinya Matsutomo ◽  
...  

2017 ◽  
Vol 13 (4) ◽  
pp. 690-692
Author(s):  
Nur Izzati Abu Bakar ◽  
Sheela Chandren ◽  
Nursyafreena Attan ◽  
Leaw Wai Loon ◽  
Hadi Nur

This paper describes the approach by using a magnetic field as a technique in order to synthesize well-aligned materials. The magnetic field technique could be a potential method because it has advantage that all of the materials could be aligned by magnetic field as long as they have magnetic anisotropy. The aim of this research is to explore the effects of magnetic field and magnetic line in the synthesis of well-aligned material, namely titania (TiO2).  The synthesis of well-aligned titania with liquid crystal as the structure-aligning agent is demonstrated under magnetic field in the presence of liquid crystal, 4′-pentyl-4-biphenylcarbonitrile (5CB), tetra-n-butyl orthotitanate (TBOT), 2-propanol and water. The mixture underwent slow hydrolysis and drying process under magnetic field (0.3 T) in ambient condition. The use of magnetic field and 5CB liquid crystal as the structure aligning agent has led to the successful formation of well-aligned TiO2-5CB via sol-gel method. When no magnetic field was applied, the TiO2-5CB obtained was spherical in shape and no alignment can be observed. This study demonstrated that magnetic field can play an important role in the synthesis of well-aligned TiO2-5CB.


2006 ◽  
Vol 45 (11) ◽  
pp. 8673-8675 ◽  
Author(s):  
Hideyuki Hirazawa ◽  
Kodai Uchihara ◽  
Hiromichi Aono ◽  
Koichi Hiraoka ◽  
Takashi Naohara ◽  
...  

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