高能
产品(数学)
制造工程
计算机科学
半导体工业
能量(信号处理)
工艺工程
工程类
数学
工程物理
几何学
统计
作者
Tim Higgs,Michael J. Cullen,Marissa Yao,Scott Stewart
标识
DOI:10.1109/issst.2010.5507691
摘要
This paper expands upon previously published work aimed at more fully assessing the lifecycle impacts of semiconductor manufacturing and product use. Specific focus is placed on energy and CO 2 impacts associated with bringing materials to the high purity grade required for semiconductor manufacturing. Past studies have suggested that high purity materials account for a significant portion of the lifecycle CO 2 impact of electronic products generally, and semiconductor products in particular. Although most high purity materials have a very high cost and obviously require more energy for additional purification, it is not accurate to assume that there is a linear correlation between chemical cost and energy intensity. While this relationship may hold for many commodity chemicals, it is likely to be less accurate for the specialty chemicals and materials used in semiconductor and electronic products. Other factors such as research and development costs or competitive advantages gained through intellectual property are more significant contributors to high input material costs. The authors performed a detailed study of the additional purification steps needed for many of the key chemicals used in semiconductor manufacturing. Results will be presented that estimate the total contribution of high purity materials to the overall semiconductor energy and CO 2 impact. The authors believe this information will be useful for future life cycle assessments for the semiconductor and ICT industries as it offers more accurate life cycle assessment data for chemicals and gases used for semiconductor manufacturing. By presenting more accurate data, the authors hope this will help identify areas of opportunity for energy and CO 2 reduction. Additional recommendations will also be provided to assist future LCA work.
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