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Smaller is Better? Maximization of Good Chips per Wafer by Co-Optimization of Yield and Chip Area

机译:较小更好?通过共同优化产量和芯片区域最大化晶片的良好芯片

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The two factors defining number of good chips that can be picked from a wafer are yield and number of chips per wafer. Number of chips is primarily defined by chip area - together with details such as die aspect ratio, kerf width, edge exclusion, and die placement While yields play the major role once a chip design is finished, in the design phase chip area can still be influenced. It is frequently thought that "smaller is better", i.e. a given functionality should be realized on a minimum silicon area. This is certainly true if there are no strong relationships between area and yield. In some cases, however, there are such strong relationships - a good example is redundancy configuration for memory chips or embedded memories. Powerful redundancy typically requires more area, but can boost yield on the other hand. Analog circuits may be more robust and have higher yield if devices are designed larger. Even in logic chips, DfM measures such as via duplication may sometimes increase chip area. In all these cases, an optimum of yield gain versus area growth has to be found. In this paper, we will review and discuss some relationships between yield and area and present methods for optimization of good chips per wafer.
机译:定义可以从晶片挑选的良好芯片数量的两个因素是每个晶片的芯片的产量和数量。芯片数量主要由芯片区域定义 - 与芯片宽度,kerf宽度,边缘排除和模具放置等细节一起定义,同时产量播放主要作用一旦芯片设计完成,在设计阶段芯片区域仍然可以影响。它经常认为“较小更好”,即应在最小硅区域上实现给定的功能。如果区域和产量之间没有强有力的关系,这肯定是真的。然而,在某些情况下,存在这种强有力的关系 - 一个很好的例子是用于存储芯片或嵌入存储器的冗余配置。强大的冗余通常需要更多区域,但另一方面可以提高产量。如果设备设计更大,则模拟电路可能更加稳健并且具有更高的收益率。即使在逻辑芯片中,DFM措施,如通过复制可能有时可能会增加芯片区域。在所有这些情况下,必须找到屈服增益与面积增长的最佳。在本文中,我们将审查并讨论产量和区域之间的一些关系,并提供每个晶片优化良好芯片的方法。

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