Spin-on organic hardmask for topo-patterned substrate

化学机械平面化 材料科学 旋涂 基质(水族馆) 化学气相沉积 光刻胶 光电子学 纳米技术 光刻 薄膜 图层(电子) 海洋学 地质学
作者
Kazuhiko Komura,Yoshi Hishiro,Goji Wakamatsu,Yoshio Takimoto,Tomoki Nagai,Tooru Kimura,Yoshikazu Yamaguchi,Tsutomu Shimokawa,Greg Breyta,Noel Arellano,M. Balakrishnan,Luisa Bozano,Ananthakrishnan Sankaranarayanan,Krishna M. Bajjuri,Daniel P. Sanders,Carl E. Larson,Anuja DeSilva,Martin Glodde
出处
期刊:Proceedings of SPIE 被引量:9
标识
DOI:10.1117/12.2046357
摘要

Carbon rich hard mask underlayer (UL) material deposition has become inevitable process in all advanced lithography applications. UL processes which include chemical vapor deposition (CVD) and spin-on UL play a very important role for pattern transfer from patterned thin photoresist to the substrate. UL materials must satisfy several requirements, which have become more demanding with device shrinkage and increasing device complexity (FinFET, 3D integration). The most important properties of next generation UL materials are superior wiggle resistance, etch controllability, thermal resistance, planarization, and gap filling performance. In particular, planarization and gap fill properties of UL material for application on topo-patterned substrate are receiving much attention recently. CVD processes generally give better wiggle performance and thermal resistance, but poorer planarization and gap filling performance than spin-on UL processes. In addition, Cost of Ownership (CoO) of CVD process is higher than that of a spin-on UL process. Therefore spin-on organic hard mask (OHM) process has been investigated as an attractive alternative to CVD processing. In this paper, we focus on an investigation of key properties of spin-on UL materials for achieving good planarity and gap filling performance on topo-patterned substrate. Various material properties such as solution viscosity, glass transition temperature (Tg), and film shrinkage ratio were evaluated and correlations between these properties and planarization were discussed.
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