| Literature DB >> 35228566 |
Feifei Wang1, Hongming Zhan1, Lintao Ji1, Tao Yang1, Qingyong Meng1, Yajun Li1, Bowen Li1, Yuansheng Zang1, Junsheng Chen1, Yinhu Huang1, Kaixuan Wang1, Lifeng Lin1, Xibin Shao2.
Abstract
As the mainstream display mode of LCD, IPS is overwhelmingly used in many fields of flat displays. However, due to the stress sensitivity of glass, the stressed light leakage is a bottleneck for achieving perfect dark state performance. The conventional scheme of using a compensation polarizer outside the cell has no effect on this light leakage. Although many studies have been conducted to overcome this limitation, the proposed methods have limited effects. Our research team has proposed a novel light leakage compensation mechanism by introducing a positive A plate that is sandwiched between the glass and the LC layer, therefore the light leakage which is caused by the combined effect of the phase retardations from the stressed glasses and the LC layer can be eliminated. In addition to theoretically analyzing the compensation principles of the novel light leakage compensation mechanism, we also use the developed positive A material to prepare light leakage compensation demos. And then the electric-optical characteristics and light leakage compensation effects of the demos are evaluated. While maintaining excellent optical and electrical characteristics, this technology effectively solves the problem of stressed light leakage of glass-based IPS, improves the dark-state image quality, and breaks the application of IPS in products such as curve products.Entities:
Year: 2022 PMID: 35228566 PMCID: PMC8885695 DOI: 10.1038/s41598-022-07182-8
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Diagram of panel bended.
Figure 2The compensation principle of the new IPS. (a) The structure of normal IPS. (a') The stressed LL principle of normal IPS. (b) The structure of compensation mode 1. (b') The compensation mechanism of compensation mode 1. (c) The structure of compensation mode 2. (c') The compensation mechanism of compensation mode 2.
Figure 3(a) The V-T curves of normal IPS, compensation mode 1 and mode 2. (a') The partial enlarged V-T curves of (a). (b) The V-T curves of stressed normal IPS, stressed compensation mode 1 and mode 2. (b') The partial enlarged V-T curves of (b).
Figure 4The CR of (a) normal IPS, (b) the compensation mode 1, and (c) the compensation mode 2.
Figure 5Schematic illustration of the formation of the LC monomer.
Figure 6The transmittance curve of the substrate before and after coating the +A plate.
Figure 7(a) The V-T curves of normal IPS, compensation mode 1 and mode 2. (a') The partial enlarged V-T curve of (a).
The electric-optical characteristics.
| Item | Normal IPS | Compensation mode 1 | Compensation mode 2 |
|---|---|---|---|
| Transmittance | 5.76% | 5.32% | 5.39% |
| Vop | 4.4 V | 4.4 V | 4.4 V |
| RT | 16.6 ms | 16.38 ms | 16.64 ms |
| CR | 1002 | 789 | 993 |
Figure 8The CR of +A at different retardation.
Figure 9The CR of +A at different alignment condition.
The characteristics of compensation layers.
| Item | +A | Panel | |
|---|---|---|---|
| Retardation | CR | CR | |
| Normal IPS | – | – | 1000 |
| Mode 1 | 350 nm | 4100 | 789 |
| Mode 2 | 200 nm | 6900 | 993 |
Figure 10(a) The L0 brightness data. (b) and (c) The photos of LL when the samples are stressed.
Figure 11(a) The L0 brightness of the curved panels. (b–d) The photos of curved normal IPS. (e–g) The photos of curved compensation mode 2.