集成电容器用聚合物陶瓷纳米复合材料的胶体加工

H. Windlass, P. Raj, D. Balaraman, Swapan K. Bhattacharya, Rao Tummala
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引用次数: 90

摘要

聚合物陶瓷复合材料为低温制造适合MCM-L技术的嵌入式电容器提供了一种合适的材料体系。利用高介电常数陶瓷粉末如铌镁铅-钛酸铅(PMNPT)和钛酸钡(BT)填充聚合物,可以改善电学性能,如介电常数。光定义环氧树脂作为基体聚合物允许通过常规光刻技术对电容器元件进行精细的特征定义。通过监测悬浮液的粘度来调整分散剂的最佳重量百分比。从电泳测量研究了微极性溶剂(如PGMEA)中的分散机制(空间和静电贡献)。在悬浮液中观察到一个高的正zeta电位,这表明静电稳定的强大贡献。通过采用双峰分布和改进的加工方法对颗粒填料进行优化,获得了介电常数大于135的pmn - pt -环氧树脂。悬浮液以最低的PGMEA含量制成,以确保干燥膜中分散和有效颗粒包装的效率。改进纳米颗粒填充环氧树脂的胶体工艺是获得高电容密度和提高成品率的超薄电容器膜(<2 /spl μ m /m)的一种很有前途的方法。最薄的薄膜(2.5-3.0 /spl mu/m)可达到35 nF/cm/sup 2/。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Colloidal processing of polymer ceramic nanocomposites for integral capacitors
Polymer ceramic composites form a suitable material system for low temperature fabrication of embedded capacitors appropriate for MCM-L technology. Improved electrical properties such as permittivity can be achieved by efficient filling of polymers with high dielectric constant ceramic powders such as lead magnesium niobate-lead titanate (PMNPT) and barium titanate (BT). Photodefinable epoxies as the matrix polymer allow fine feature definition of the capacitor elements by conventional lithography techniques. The optimum weight percent of dispersant is tuned by monitoring the viscosity of the suspension. The dispersion mechanism (steric and electrostatic contributions) in a slightly polar solvent such as PGMEA is investigated from electrophoretic measurements. A high positive zeta potential is observed in the suspension, which suggests a strong contribution of electrostatic stabilization. By optimizing the particle packing using a bimodal distribution and modified processing methodology, dielectric constant greater than 135 was achieved (PMN-PT-epoxy). Suspensions are made with the lowest PGMEA content to ensure the efficiency of the dispersion and efficient particle packing in the dried film. Improved colloidal processing of nanoparticle-filled epoxy is a promising method to obtain ultra-thin capacitor films (<2 /spl mu/m) with high capacitance density and improved yield. Capacitance of 35 nF/cm/sup 2/ was achieved with the thinnest films (2.5-3.0 /spl mu/m).
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