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Variation-tolerant and self-repair design methodology for low temperature polycrystalline silicon liquid crystal and organic light emitting diode displays

机译:低温多晶硅液晶和有机发光二极管显示器的耐变化和自修复设计方法

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In low temperature polycrystalline silicon (LTPS) based display technologies, the electrical parameter variations in thin film transistors (TFTs) caused by random grain boundaries (GBs) result in significant yield loss, thereby impeding its wide deployment. In this paper, from a system and circuit design perspective, we propose a new self-repair design methodology to compensate the GB-induced variations for LTPS liquid crystal displays (LCDs) and active-matrix organic light emitting diode (AMOLED) displays. The key idea is to extend the charging time for detected low drivability pixel switches, hence, suppressing the brightness non-uniformity and eliminating the need for large voltage margins. The proposed circuit was implemented in VGA LCD panels which were used for prediction of power consumption and yield. Based on the simulation results, the proposed circuit decreases the required supply voltage by 20% without performance and yield degradation. 7% yield enhancement is observed for high resolution, large sized LCDs while incurring negligible power penalty. This technique enables LTPS-based displays either to further scale down the device size for higher integration and lower power consumption or to have superior yield in large sized panels with small power overhead.
机译:在基于低温多晶硅(LTPS)的显示技术中,由随机晶界(GB)引起的薄膜晶体管(TFT)的电参数变化会导致明显的成品率损失,从而阻碍其广泛部署。在本文中,从系统和电路设计的角度出发,我们提出了一种新的自修复设计方法,以补偿GB引起的LTPS液晶显示器(LCD)和有源矩阵有机发光二极管(AMOLED)显示器的变化。关键思想是延长检测到的低可驱动性像素开关的充电时间,从而抑制亮度不均匀并消除对大电压裕量的需求。拟议的电路是在VGA LCD面板中实现的,该面板用于预测功耗和良率。根据仿真结果,所提出的电路将所需的电源电压降低了20%,而性能和成品率却没有下降。高分辨率,大尺寸LCD的产量提高了7%,而功率损失却可以忽略不计。这项技术使基于LTPS的显示器可以进一步缩小设备尺寸以实现更高的集成度和更低的功耗,或者在具有较小功率开销的大型面板中具有出众的成品率。

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