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    • 2. 发明申请
    • MULTILAYER CERAMIC CAPACITOR AND METHOD OF MANUFACTURING THE SAME
    • 多层陶瓷电容器及其制造方法
    • US20090201628A1
    • 2009-08-13
    • US12304252
    • 2008-03-14
    • Hiroshi KagataSatoshi TomiokaKoichi Shigeno
    • Hiroshi KagataSatoshi TomiokaKoichi Shigeno
    • H01G4/12
    • H01G4/1209H01G4/30Y10T29/435
    • In a multilayer ceramic capacitor including: a laminated body layer formed by alternately laminating dielectric layers made of ceramic particles and internal electrodes; and a pair of external electrodes provided on at least both end surfaces of the laminated body layer and alternately connected to the internal electrodes electrically, the number of boundaries between ceramic particles per unit length of the dielectric layer in the lamination direction is larger than that in the direction connecting the pair of external electrodes. Thus increasing the number of ceramic grain boundaries between internal electrodes improves the insulation characteristic. Particularly, even if the number of ceramic particles thicknesswise decreases due to lamellation, increasing the number of grain boundaries suppresses deterioration of the insulation characteristic.
    • 一种多层陶瓷电容器,包括:通过交替层叠由陶瓷颗粒和内部电极制成的电介质层而形成的层叠体层; 以及一对外部电极,设置在层叠体层的至少两个端面上,并且电连接于内部电极,层叠方向的电介质层的单位长度的陶瓷粒子的边界数大于 连接一对外部电极的方向。 因此,增加内部电极之间的陶瓷晶界的数量提高了绝缘特性。 特别是,即使陶瓷颗粒的数量由于层叠而厚度减小,因此增加晶界数可以抑制绝缘特性的劣化。
    • 7. 发明授权
    • Dielectric ceramic and dielectric device
    • 介质陶瓷和电介质器件
    • US06762142B2
    • 2004-07-13
    • US10251585
    • 2002-09-19
    • Kojiro OkuyamaJunichi KatoHiroshi KagataKenji Iijima
    • Kojiro OkuyamaJunichi KatoHiroshi KagataKenji Iijima
    • C04B35465
    • C04B35/49C04B35/6262C04B2235/3206C04B2235/3249C04B2235/3251C04B2235/3262C04B2235/3275C04B2235/3284C04B2235/604C04B2235/786C04B2235/94C04B2235/96H01P7/10
    • A dielectric ceramic is made of a sintered body of a complex oxide including at least one element selected from the group consisting of Zr, Ti and Mn, at least one element selected from the group consisting of Mg, Zn and Co, and at least one element selected from the group consisting of Nb and Ta, wherein, the complex oxide is represented by a formula xZrO2-yTiO2-zA(1+w)/3B(2−w)/3O2 where ‘A’ in the formula denotes at least one element selected from the group (A) consisting of Mg, Zn and Co, ‘B’ denotes at one element selected from the group (B) consisting of Nb and Ta; x, y, z and w denote values in the respective ranges of 0.20≦x≦0.55, 0.40≦y≦0.55, 0.05≦z≦0.25, and 0≦w≦0.30, and x, y and z have a relationship represented as x+y+z=1; MnO is present in a range of 0.1 mol % to 1.0 mol % to the complex oxide; and an average grain size of the dielectric ceramic is from 10 &mgr;m to 70 &mgr;m, thereby providing a dielectric ceramic that has a high dielectric constant (&egr;r) and an unloaded (Qu) value even in a comparatively low frequency region as a microwave region i.e., in a range of 0.4 GHz to 2.4 GHz and that realizes a desired temperature coefficient (&tgr;f) of a resonant frequency with a high mechanical strength, and thus a dielectric device using the dielectric ceramic is provided.
    • 电介质陶瓷由包含选自Zr,Ti和Mn中的至少一种元素的复合氧化物的烧结体,选自Mg,Zn和Co中的至少一种元素和至少一种 元素选自Nb和Ta,其中复合氧化物由式xZrO2-yTiO2-zA(1 + w)/ 3B(2-w)/ 3O2表示,其中式中的“A”至少表示 选自由Mg,Zn和Co组成的组(A)中的一种元素,'B'表示选自Nb和Ta组成的组(B)中的一种元素; x,y,z和w分别表示0.20 <= x <= 0.55,0.40 <= y <= 0.55,0.05 <= z <= 0.25,0 <= w <0.30的各个范围内的值,x, y和z具有表示为x + y + z = 1的关系; MnO以0.1mol%至1.0mol%的范围存在于复合氧化物中; 并且电介质陶瓷的平均晶粒尺寸为10μm至70μm,从而提供即使在作为微波区域的较低频率区域中也具有高介电常数(ε)和无载(Qu)值的电介质陶瓷,即 ,在0.4GHz至2.4GHz的范围内,并且实现具有高机械强度的谐振频率的期望温度系数(tauf),因此提供了使用电介质陶瓷的电介质器件。