Academic literature on the topic '电子陶瓷'

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Journal articles on the topic "电子陶瓷"

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黄, 懋容, 孝琛 陈, 蕴玉 王, 华. 顾, 巨华 杨, and 永枢 何. "用正电子湮没研究ZnO陶瓷电阻器." Chinese Science Bulletin 41, no. 6 (March 1, 1996): 499–504. http://dx.doi.org/10.1360/csb1996-41-6-499.

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盛, 兆玄, 卓. 徐, 新利 孙, 玉军 冯, 洁. 崔, and 璇. 黄. "脉冲极性对反铁电陶瓷电子发射特性影响." Chinese Science Bulletin 53, no. 11 (June 1, 2008): 1246–50. http://dx.doi.org/10.1360/csb2008-53-11-1246.

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Shen Dian-Hong, Bao Chang-Lin, Lu Hua, Zhang Xiao-Jun, and Lin Zhang-Da. "Ti/AIN陶瓷界面反应的光电子能谱研究." Acta Physica Sinica 44, no. 2 (1995): 259. http://dx.doi.org/10.7498/aps.44.259.

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Kenneth, D. Collerson Alan Greig, 建新 赵, and 宝平 李. "电感耦合等离子体质谱分析在中国古陶瓷研究中的应用." Chinese Science Bulletin 48, no. 7 (April 1, 2003): 659–64. http://dx.doi.org/10.1360/csb2003-48-7-659.

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Xun Tao, 荀涛, 杨汉武 Yang Hanwu, and 张建德 Zhang Jiande. "High electric field ceramic-vacuum interface for high-current electron beam diodes." High Power Laser and Particle Beams 26, no. 4 (2014): 45028. http://dx.doi.org/10.3788/hplpb20142604.45028.

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Mei Xuesong, 梅雪松, 杨子轩 Yang Zixuan, and 赵万芹 Zhao Wanqin. "Laser Hole Drilling on Surface of Electronic Ceramic Substrates." Chinese Journal of Lasers 47, no. 5 (2020): 0500011. http://dx.doi.org/10.3788/cjl202047.0500011.

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Li Yigui, 李以贵, 蔡金东 Cai Jindong, 黄远 Huang Yuan, 吕曈 Lü Tong, 颜平 Yan Ping, and 王欢 Wang Huan. "Fabrication of Piezoelectric Ceramic Microstructure Based on Excimer Laser." Laser & Optoelectronics Progress 54, no. 9 (2017): 091403. http://dx.doi.org/10.3788/lop54.091403.

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郑, 岳松. "纳米级氧化镁的制备及应用." 现代教育论坛 3, no. 4 (July 16, 2020). http://dx.doi.org/10.32629/mef.v3i4.796.

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Dissertations / Theses on the topic "电子陶瓷"

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Du, Hongchu. "Synthesis and Characterization of Ferroelectric Nanomaterials." Doctoral thesis, Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, 2008. http://nbn-resolving.de/urn:nbn:de:bsz:14-ds-1216128809669-53267.

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Abstract:
In this dissertation, BaTiO3 nanocrystals, Bi4Ti3O12 nanostructured microspheres, and cosubstituted Bi4Ti3O12 nanoparticles and ceramics were prepared using solvothermal, hydrothermal and citrate-gel methods. The ferroelectric properties of the prepared cosubstituted Bi4Ti3O12 ceramics were studied using P–E hysteresis loop, leakage, and polarization fatigue measurements. A two-phase solvothermal synthesis approach for the preparation of hydrophobic BaTiO3 nanocrystals was developed. The two-phase method is based on the growth of nanocrystals at the oil/water interface by the reaction between metal surfactant complexes in the oil phase and a mineralizer in the water phase. Three kind of organic solvents, hexadecene, toluene, and heptane were used as the oil phase and compared to each other with respect to the product quality. The BaTiO3 particles are crystalline with a mean size of 3.7 nm and can be dispersed in a variety of organic solvents forming highly transparent dispersions. A hydrothermal method was developed for the synthesis of Bi4Ti3O12 nanostructured microspheres consisting of granular nanoparticles and nano-platelets. The precursor powder was prepared using a diethylene glycol mediated coprecipitation method. Tailoring of the morphology was achieved by changing the precursor quantity, sodium hydroxide concentration, and reaction time. The formation mechanism of the nanostructured microspheres probably involves aggregation, followed by dissolution and recrystallization. Bi3.25Pr0.75Ti2.97V0.03O12 (BPTV) and Bi3.25La0.75Ti3-xMxO12, (BLTMx, M = Mo, W, Nb, V, x = 0.0–0.12) ferroelectric nanoparticles and ceramics were synthesized using a modified citrate-gel method that has a crystallization temperature as low as 450 °C. The synthesized nanoparticles were spherical ranging from 30 to 100 nm. Except Nb5+, other donor cations were introduced using the corresponding oxides that have advantages in terms of high purity, low cost, and availability. The Bi3.25Pr0.75Ti2.97V0.03O12 ceramic is orthorhombic and its 2Pr and 2Ec values measured at 300 kV/cm were 35 μC/cm2 and 148 kV/cm respectively. The texture, microstructure, and ferroelectric properties of the prepared Bi3.25La0.75Ti3-xMxO12, (BLTMx, M = Mo, W, Nb, V, x = 0.0–0.12) ceramics depend on x. The maximum 2Pr (30–32 μC cm−2) was achieved at an optimum cosubstitution level (x = 0.025 for M6+, x = 0.03 for M5+). The high remanent polarization, low leakage current, and low polarization fatigue render the prepared ceramics promising for practical applications.
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