真空 ›› 2026, Vol. 63 ›› Issue (5): 21-27.doi: 10.13385/j.cnki.vacuum.2026.05.03
肖德志1, 梁家侨1, 全景程1, 吴世傲2, 张展成2, 曹金枝2, 田修波2,3,4
XIAO Dezhi1, LIANG Jiaqiao1, QUAN Jingcheng1, WU Shiao2, ZHANG Zhancheng2, CAO Jinzhi2, TIAN Xiubo2,3,4
摘要: 随着摩尔定律逼近物理极限,先进封装成为芯片性能突破的关键。玻璃通孔(TGV)因低介电常数、低损耗及低成本优势展现巨大潜力。但TGV填铜面临高深宽比通孔种子层覆盖不均、金属与玻璃结合力不足等挑战。文章通过磁控溅射制备 TGV铜种子层对其局部电场展开研究,构建真空腔体电场模型并结合有限元分析,探究基板类型、靶面与基板间距、直流偏压及通孔预镀翻转对通孔内电场的影响,揭示金属离子迁移与成膜机理。研究结果表明:玻璃基板内形成有效电势差与垂直电场,使金属离子抵达孔底,但横向电场仅集中孔顶致侧壁覆盖不均。减小间距与增大偏压能增强电场,却难改善横向电场分布。通孔预镀、翻转后,底部金属种子层可诱导横向电场,实现离子横向沉积,且种子层生长的等电势效应保障成膜均匀性。本研究为金属离子化磁控溅射在TGV种子层制备提供理论与技术参考。
中图分类号: O539
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