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基于阻尼振荡的驱动波形设计以优化三色电泳显示器中的红色饱和度

Design of Driving Waveform Based on a Damping Oscillation for Optimizing Red Saturation in Three-Color Electrophoretic Displays.

作者信息

Yi Zichuan, Zeng Weibo, Ma Simin, Feng Haoqiang, Zeng Wenjun, Shen Shitao, Shui Lingling, Zhou Guofu, Zhang Chongfu

机构信息

College of Electron and Information, University of Electronic Science and Technology of China Zhongshan Institute, Zhongshan 528402, China.

South China Academy of Advanced Optoelectronics, South China Normal University, Guangzhou 510006, China.

出版信息

Micromachines (Basel). 2021 Feb 7;12(2):162. doi: 10.3390/mi12020162.

Abstract

At present, three-color electrophoretic displays (EPDs) have problems of dim brightness and insufficient color saturation. In this paper, a driving waveform based on a damping oscillation was proposed to optimize the red saturation in three-color EPDs. The optimized driving waveform was composed of an erasing stage, a particles activation stage, a red electrophoretic particles purification stage, and a red display stage. The driving duration was set to 360 ms, 880 ms, 400 ms, and 2400 ms, respectively. The erasing stage was used to erase the current pixel state and refresh to a black state. The particles' activation stage was set as two cycles, and then refreshed to the black state. The red electrophoretic particles' purification stage was a damping oscillation driving waveform. The red and black electrophoretic particles were separated by changing the magnitude and polarity of applied electric filed, so that the red electrophoretic particles were purified. The red display stage was a low positive voltage, and red electrophoretic particles were driven to the common electrode to display a red state. The experimental results showed that the maximum red saturation could reach 0.583, which was increased by 27.57% compared with the traditional driving waveform.

摘要

目前,三色电泳显示器(EPD)存在亮度暗淡和色彩饱和度不足的问题。本文提出了一种基于阻尼振荡的驱动波形,以优化三色EPD中的红色饱和度。优化后的驱动波形由擦除阶段、粒子激活阶段、红色电泳粒子净化阶段和红色显示阶段组成。驱动持续时间分别设置为360毫秒、880毫秒、400毫秒和2400毫秒。擦除阶段用于擦除当前像素状态并刷新为黑色状态。粒子激活阶段设置为两个周期,然后刷新为黑色状态。红色电泳粒子净化阶段是一个阻尼振荡驱动波形。通过改变施加电场的大小和极性来分离红色和黑色电泳粒子,从而净化红色电泳粒子。红色显示阶段是一个低正电压,驱动红色电泳粒子到公共电极以显示红色状态。实验结果表明,最大红色饱和度可达0.583,与传统驱动波形相比提高了27.57%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac71/7915761/b6186f82850e/micromachines-12-00162-g001.jpg

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