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Enhancement of Image Quality in LCD by Doping γ-Fe2O3 Nanoparticles and Reducing Friction Torque Difference

机译:通过掺杂γ-Fe2O3纳米颗粒并减少摩擦转矩差来增强LCD的图像质量

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摘要

Improving image sticking in liquid crystal display (LCD) has attracted tremendous interest because of its potential to enhance the quality of the display image. Here, we proposed a method to evaluate the residual direct current (DC) voltage by varying liquid crystal (LC) cell capacitance under the combined action of alternating current (AC) and DC signals. This method was then used to study the improvement of image sticking by doping γ-Fe2O3 nanoparticles into LC materials and adjusting the friction torque difference of the upper and lower substrates. Detailed analysis and comparison of residual characteristics for LC materials with different doping concentrations revealed that the LC material, added with 0.02 wt% γ-Fe2O3 nanoparticles, can absorb the majority of free ions stably, thereby reducing the residual DC voltage and extending the time to reach the saturated state. The physical properties of the LC materials were enhanced by the addition of a small amount of nanoparticles and the response time of doping 0.02 wt% γ-Fe2O3 nanoparticles was about 10% faster than that of pure LC. Furthermore, the lower absolute value of the friction torque difference between the upper and lower substrates contributed to the reduction of the residual DC voltage induced by ion adsorption in the LC cell under the same conditions. To promote the image quality of different display frames in the switching process, we added small amounts of the nanoparticles to the LC materials and controlled friction technology accurately to ensure the same torque. Both approaches were proven to be highly feasible.
机译:改善在液晶显示器(LCD)中的图像残留已经引起了极大的兴趣,因为它具有提高显示图像质量的潜力。在这里,我们提出了一种在交流电和直流信号的联合作用下通过改变液晶(LC)单元电容来评估残留直流电(DC)电压的方法。然后将该方法用于研究通过将γ-Fe2O3纳米粒子掺杂到LC材料中并调整上下基板的摩擦扭矩差来改善图像残留的方法。详细分析和比较不同掺杂浓度的LC材料的残留特性后发现,添加0.02 wt%γ-Fe2O3纳米颗粒的LC材料可以稳定地吸收大部分自由离子,从而降低了残留的DC电压并延长了回收时间。达到饱和状态。通过添加少量纳米颗粒,可以增强液晶材料的物理性能,掺杂0.02 wt%γ-Fe2O3纳米颗粒的响应时间比纯LC快约10%。此外,在相同条件下,上基板和下基板之间的摩擦扭矩差的绝对值较低有助于降低由离子吸附在LC单元中引起的残留DC电压。为了在切换过程中提高不同显示框架的图像质量,我们向LC材料中添加了少量的纳米颗粒,并精确地控制了摩擦技术以确保相同的扭矩。两种方法都被证明是高度可行的。

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