Integrated Light Emission Barrier for Narrow-Border OLED Displays
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Solution Overview
Problem
Light leakage occurs in display devices with narrow border widths, particularly in OLED panels, due to the absence of components like tubes or Mylar strips that typically block light emissions from imaging devices, such as infrared cameras, leading to interference with the active display area.
Innovation Solution
Implementing a light emission barrier, such as a light-blocking tape or edge-printed ink, to block undesired light emissions while allowing desired light to pass through, using materials with high optical density to absorb 99% of incident energy and minimize mechanical interference.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Length of stationary object
If narrow border widths are used in display devices, then the device dimensions are reduced and modernization is achieved, but light leakage occurs from imaging devices interfering with the active display area
Solution Approach 1:
A light emission barrier is introduced as an intermediary component between the imaging device and the active display area. This barrier selectively blocks stray light emissions from the imaging device while allowing the display content to pass through, thereby preventing light leakage without requiring increased border widths.
Solution Approach 2:
The light emission barrier is strategically positioned only in specific regions where light leakage occurs, rather than requiring a complete increase in overall border width. This localized approach blocks harmful light paths while maintaining narrow borders in other areas, preserving the modernized compact design.
2Object-affected harmful factors
If traditional light blocking components (tubes or Mylar strips) are used to prevent light leakage, then light interference is blocked, but the device dimensions and structural complexity increase
Solution Approach 1:
The light emission barrier is implemented as a thin film or flexible structure that can be integrated into the existing display architecture without adding significant thickness or bulk. This thin film approach blocks light interference while maintaining compact device dimensions, avoiding the need for bulky traditional components.
Solution Approach 2:
The light emission barrier is merged with existing display components or integrated directly into the display structure, eliminating the need for separate traditional light-blocking components like tubes or Mylar strips. This integration prevents light interference while avoiding additional structural complexity and increased dimensions.
3Object-affected harmful factors
If traditional light blocking components are used, then light leakage is prevented, but the overall device structure becomes more complex
Solution Approach 1:
The light emission barrier is merged with existing display components or integrated directly into the display structure, eliminating the need for separate traditional light-blocking components like tubes or Mylar strips. This integration prevents light interference while avoiding additional structural complexity and increased dimensions.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
Prevents light leakage effectively, maintaining the integrity of the display area by blocking stray light emissions without increasing the device's overall dimensions.
Implementation Method 1
using materials with high optical density to absorb 99% of incident energy
Data Source
AI summary
A display includes an imaging device with a light source providing a first light emission and a second light emission, and an organic light-emitting diode panel proximate to the light source, wherein the first light emission leaks at an active area of the display device. A light emission barrier blocks the first light emission from leaking at the active area of the display while permitting the second light emission through the imaging device.


