J Shanghai Jiaotong Univ Sci ›› 2023, Vol. 28 ›› Issue (2): 207-212.doi: 10.1007/s12204-022-2478-6
陈志刚,李海华
收稿日期:
2021-06-07
接受日期:
2021-06-09
出版日期:
2023-03-28
发布日期:
2023-03-21
CHEN Zhigang (陈志刚), LI Haihua∗ (李海华)
Received:
2021-06-07
Accepted:
2021-06-09
Online:
2023-03-28
Published:
2023-03-21
摘要: 通过传统氧化物固相烧结法制备了Ca2+、Sn4+共取代钇铁石榴石铁氧体材料,系统研究了成型压力对钇铁石榴石铁氧体密度、磁性能以及微观形貌等性能的影响。结果表明,钇铁石榴石铁氧体的生胚密度随着成型压力的提升不断增加,烧结密度则呈现先增大后减小的趋势,同时样品铁磁共振线宽则先下降后上升,成型压力对材料的饱和磁化强度、剩余磁化强度和矫顽力影响较小。研究证明,通过改变成型压力可以实现对材料密度以及铁磁共振线宽的调控,在5 MPa的成型压力下制备的样品性能最优。
中图分类号:
陈志刚, 李海华. 成型压力对钇铁石榴石铁氧体性能的影响[J]. J Shanghai Jiaotong Univ Sci, 2023, 28(2): 207-212.
CHEN Zhigang (陈志刚), LI Haihua∗ (李海华). Influence of Forming Pressure on Properties of Yttrium Iron Garnet Ferrite[J]. J Shanghai Jiaotong Univ Sci, 2023, 28(2): 207-212.
[1] | GELLER S, GILLEO M A. Structure and ferrimagnetism of yttrium and rare-earth–iron garnets [J]. Acta Crystallographica, 1957, 10(3): 239. |
[2] | SERGA A A, CHUMAK A V, HILLEBRANDS B. YIG magnonics [J]. Journal of Physics D : Applied Physics, 2010, 43(26): 264002. |
[3] | MUSA M A, AZIS R S, OSMAN N H, et al. Structural and magnetic properties of yttrium iron garnet (YIG) and yttrium aluminum iron garnet (YAlG) nanoferrite via sol-gel synthesis [J]. Results in Physics, 2017, 7: 1135-1142. |
[4] | MALLMANN E J J, SOMBRA A S B, GOES J C, et al. Yttrium iron garnet: Properties and applications review [J]. Solid State Phenomena, 2013, 202: 65-96. |
[5] | GANZHORN K, KLINGLER S, WIMMER T, et al. Magnon-based logic in a multi-terminal YIG/Pt nanostructure [J]. Applied Physics Letters, 2016, 109(2): 022405. |
[6] | HAAS O, DUFAY B, SAEZ S, et al. Sensitivity and noise of a magnetic field sensor based on magnetostatic spin wave YIG device and its integrated electronics [J]. IEEE Sensors Journal, 2020, 20(23): 14148-14156. |
[7] | NOUREDDINE S, BITAR Z, SROUR A, et al. Synthesis, characterization and magnetic properties of Y3?xSmxFe5O12 [J]. Applied Physics A, 2020, 126(11): 1-7. |
[8] | YANG Y, YU Z, GUO Q G, et al. Thermo-magnetization characteristics and ferromagnetic resonance linewidth broadening mechanism for Ca-Sn Co-substituted YIG ferrites [J]. Ceramics International, 2018, 44(10): 11718-11723. |
[9] | LI H Y, GUO Y H. Synthesis and characterization of YIG nanoparticles by low temperature sintering [J]. Journal of Materials Science: Materials in Electronics, 2018, 29(11): 9369-9374. |
[10] | ZHOU N, JIA L J, ZHANG H W. Effect of Bi3+-Li+-V5+ co-substitution on the structure and properties of low temperature sintered YIG ferrite [J]. Journal of Magnetic Materials and Devices, 2020, 51(5): 6-8 (in Chinese). |
[11] | CHEN F, LUO H, CHENG Y Z, et al. Investigation of microwave magnetodielectric effect in Yb-substituted yttrium iron garnet [J]. Journal of Magnetic Materials and Devices, 2020, 51(4): 7-13 (in Chinese). |
[12] | AUNG Y L, IKESUE A, WATANABE T, et al. Bi substituted YIG ceramics isolator for optical communication [J]. Journal of Alloys and Compounds, 2019, 811: 152059. |
[13] | MAHENDER C, SUMANGALA T P, ADE R, et al. Low-loss YIG thick films for microwave applications [J]. Ceramics International, 2019, 45(4): 4316-4321. |
[14] | PAIVA D V M, SILVA M A S, RIBEIRO T S, et al. Novel magnetic-dielectric composite ceramic obtained from Y3Fe5O12 and CaTiO3 [J]. Journal of Alloys and Compounds, 2015, 644: 763-769. |
[15] | JIA N, ZHANG H, HARRIS V G. Iron-depleted Bi-YIG having enhanced gyromagnetic properties suitable for LTCC processing [J]. Journal of the American Ceramic Society, 2019, 102(3): 1180-1191. |
[16] | HESABI Z R, HAGHIGHATZADEH M, MAZAHERI M, et al. Suppression of grain growth in submicrometer alumina via two-step sintering method [J]. Journal of the European Ceramic Society, 2009, 29(8): 1371-1377. |
[17] | SHONGWE M B, RAMAKOKOVHU M M, DIOUF S, et al. Effect of starting powder particle size and heating rate on spark plasma sintering of FeNi alloys [J]. Journal of Alloys and Compounds, 2016, 678: 241-248. |
[18] | SHARMA V, KUANR B K. Magnetic and crystallographic properties of rare-earth substituted yttrium-iron garnet [J]. Journal of Alloys and Compounds, 2018, 748: 591-600. |
[19] | VAN P C, SURABHI S, DONGQUOC V, et al. Effect of annealing temperature on surface morphology and ultralow ferromagnetic resonance linewidth of yttrium iron garnet thin film grown by RF sputtering [J]. Applied Surface Science, 2018, 435: 377-383. |
[20] | SCHLO¨ MANN E. Spin-wave analysis of ferromagnetic resonance in polycrystalline ferrites [J]. Journal of Physics and Chemistry of Solids, 1958, 6(2/3): 242-256. |
[21] | SCHLO¨ MANN E. Ferromagnetic resonance in polycrystalline ferrites with large anisotropy — I: General theory and application to cubic materials with a negative anisotropy constant [J]. Journal of Physics and Chemistry of Solids, 1958, 6(2/3): 257-266. |
[22] | LLABRE′S J, NICOLAS J, SROUSSI R. Effect of the vanadium substitution on the magnetic properties of cobalt doped yttrium-gadolinium iron garnets [J]. Applied Physics, 1977, 12(1): 87-91. |
[23] | HAN Z Q, ZHANG F Y. Influence of surface-roughness and temperature on the ferromagnetic resonance linewidth of polycrystalline garnet [J]. Journal of Magnetic Materials and Devices, 2017, 48(1): 20-23 (in Chinese). |
[24] | FAKHRUL T, TAZLARU S, BERAN L, et al. Magneto-optical Bi: YIG films with high figure of merit for nonreciprocal photonics [J]. Advanced Optical Materials, 2019, 7(13): 1900056. |
[25] | DIONNE G F. On the origin of magnetic inhomogeneity in Ca2+2V5+-substituted garnets [J]. Materials Research Bulletin, 1972, 7(12): 1393-1401. |
[26] | AKHTAR M N, YOUSAF M, KHAN S N, et al. Structural and electromagnetic evaluations of YIG rare earth doped (Gd, Pr, Ho, Yb) nanoferrites for high frequency applications [J]. Ceramics International, 2017, 43(18): 17032-17040. |
[27] | HOSSEINZADEH S, BEHBOUDNIA M, JAMILPANAH L, et al. High saturation magnetization, low coercivity and fine YIG nanoparticles prepared by modifying co-precipitation method [J]. Journal of Magnetism and Magnetic Materials, 2019, 476: 355-360. |
[28] | XUE D S, CHAI G Z, LI X L, et al. Effects of grain size distribution on coercivity and permeability of ferromagnets [J]. Journal of Magnetism and Magnetic Materials, 2008, 320(8): 1541-1543. |
[29] | AMIGHIAN J, HASANPOUR A, MOZAFFARI M. The effect of Bi mole ratio on phase formation in BixY3?xFe5O12 nanoparticles [J]. Physica Status Solidi (c), 2004, 1(7): 1769-1771. |
[1] | 冯立伟, 孙立文, 顾欢, 李元. 基于增量式等距映射同双重局部密度方法的工业过程故障检测[J]. 上海交通大学学报, 2024, 58(4): 525-533. |
[2] | 旷永红, 谢伟, 田莉, 林愿, 周细凤. 一种低压输入高压输出的两级式逆变器高效率调制方法[J]. 上海交通大学学报, 2023, 57(7): 878-886. |
[3] | 杨晓洁, 常雪婷, 范润华. 快速多重旋转碾压法对Ti6Al4V钛合金组织和性能的影响[J]. J Shanghai Jiaotong Univ Sci, 2023, 28(2): 264-269. |
[4] | 舒俊清, 许昱晖, 夏唐斌, 潘尔顺, 奚立峰. 面向多故障模式的多尺度相似性集成寿命预测[J]. 上海交通大学学报, 2022, 56(5): 564-575. |
[5] | 丁卯, 耿达, 周明东, 来新民. 基于变密度法的结构强度拓扑优化策略[J]. 上海交通大学学报, 2021, 55(6): 764-773. |
[6] | 何银水, 李岱泽, 赵梓宇, 钱韦旭. 基于亮度突变性与密度特征检测的厚板T形接头焊缝轮廓识别[J]. 上海交通大学学报, 2021, 55(6): 757-763. |
[7] | 李乾, 楼映中, 贺治国. 变密度流体层中气泡浮升运动的数值模拟[J]. 上海交通大学学报, 2020, 54(7): 728-735. |
[8] | 陈岩, 李艳艳, 杨立波, 倪兴虎, 杨柏胜, 王亚辉. 地海杂波统计特性研究概述[J]. 空天防御, 2020, 3(4): 44-51. |
[9] | 袁丁,孙慧贤,闫云斌,全厚德. 节点本振误差对分布式发射波束形成性能的影响[J]. 上海交通大学学报, 2020, 54(1): 92-99. |
[10] | 郭拓1,2,王英民1,张立琛1. 采用特征向量夹角联合概率密度函数的 信源个数估计方法[J]. 上海交通大学学报(自然版), 2018, 52(4): 469-473. |
[11] | 李桐宇,任锐,蔡鸿明,姜丽红. 基于文本对象模型的自动化网页内容提取方法[J]. 上海交通大学学报(自然版), 2018, 52(10): 1363-1369. |
[12] | 徐晋1, 汪可友1,李国杰1,张邦玲2,高昇宇3. 随机扰动下的电力系统强迫振荡分析[J]. 上海交通大学学报(自然版), 2017, 51(5): 563-. |
[13] | 黄必桂, 金嘉萌, 胡琴, 谢波涛. 基于实测资料的南海海浪波高和周期联合分布研究[J]. 海洋工程装备与技术, 2017, 4(4): 187-192. |
[14] | 周苏,姜缜,DE LILE J R. 基于密度泛函理论的过渡金属酞菁配合物氧还原反应催化能力[J]. 上海交通大学学报(自然版), 2017, 51(12): 1422-1427. |
[15] | 李军辉, 程东生, 王锋, 费杨, 薛勤, 汪年松. 糖尿病肾病患者血脂异常与尿蛋白关系[J]. 上海交通大学学报, 2016, 50(03): 478-482. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||