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Nanoimprint performance improvements for high volume semiconductor device manufacturing

抵抗 材料科学 德拉姆 光刻 平版印刷术 多重图案 薄脆饼 纳米压印光刻 光电子学 基质(水族馆) 动态随机存取存储器 半导体器件制造 计算机科学 纳米技术 制作 半导体存储器 计算机硬件 图层(电子) 替代医学 病理 地质学 海洋学 医学
作者
Mitsuru Hiura,Yukio Takabayashi,Atsushi Kimura,Hiroshi Morohoshi,Yoshio Suzaki,Takahiro Matsumoto,Anshuman Cherala,Choi Js
标识
DOI:10.1117/12.2584675
摘要

Imprint lithography is an effective and well-known technique for replication of nano-scale features. Nanoimprint lithography (NIL) manufacturing equipment utilizes a patterning technology that involves the field-by-field deposition and exposure of a low viscosity resist deposited by jetting technology onto the substrate. The patterned mask is lowered into the fluid which then quickly flows into the relief patterns in the mask by capillary action. Following this filling step, the resist is crosslinked under UV radiation, and then the mask is removed, leaving a patterned resist on the substrate. The technology faithfully reproduces patterns with a higher resolution and greater uniformity compared to those produced by photolithography equipment. Additionally, as this technology does not require an array of wide-diameter lenses and the expensive light sources necessary for advanced photolithography equipment, NIL equipment achieves a simpler, more compact design, allowing for multiple units to be clustered together for increased productivity. Previous studies have demonstrated NIL resolution better than 10nm, making the technology suitable for the printing of several generations of critical memory levels with a single mask. In addition, resist is applied only where necessary, thereby eliminating material waste. Given that there are no complicated optics in the imprint system, the reduction in the cost of the tool, when combined with simple single level processing and zero waste leads to a cost model that is very compelling for semiconductor memory applications. DRAM memory is challenging, because the roadmap for DRAM calls for continued scaling, eventually reaching half pitches of 14nm and beyond. For DRAM, overlay on some critical layers is much tighter than NAND Flash, with an error budget of 15-20% of the minimum half pitch. For 14nm, this means 2.1-2.8nm. DRAM device design is also challenging, and layouts are not always conducive to pitch dividing methods such as SADP and SAQP. This makes a direct printing process, such as NIL and attractive solution. The purpose of this paper is to review the performance improvements related to overlay, resolution and pattern transfer. Improvements in overlay include control methods such as imprint force, mask to wafer tip/tilt and pneumatic controls at the wafer edge. We also introduce the pattern transfer scheme used to etch features with half pitches below 20nm.
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