4.7 Article

Ameliorating Uniformity and Color Conversion Efficiency in Quantum Dot-Based Micro-LED Displays through Blue-UV Hybrid Structures

期刊

NANOMATERIALS
卷 13, 期 14, 页码 -

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MDPI
DOI: 10.3390/nano13142099

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quantum dot color conversion layer; ALD passivation technology; micro-LED; intermixing quantum well; modified DBR

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This study proposes a novel structural design that combines blue and quantum well (QW)-intermixing ultraviolet (UV)-hybrid μ-LEDs to achieve high color-conversion efficiency (CCE). Through simulations, various combinations of QD and TiO2 concentrations and thickness variations are examined for their impact on photoluminescence efficiency (PLQY). The resulting high-efficiency color-conversion layer (CCL) saves time and material costs and enhances light absorption and illumination uniformity. The research also introduces a passivation protection layer and a modified distributed Bragg reflector (DBR) to improve device reliability and achieve high CCE values.
Quantum dot (QD)-based RGB micro light-emitting diode (& mu;-LED) technology shows immense potential for achieving full-color displays. In this study, we propose a novel structural design that combines blue and quantum well (QW)-intermixing ultraviolet (UV)-hybrid & mu;-LEDs to achieve high color-conversion efficiency (CCE). For the first time, the impact of various combinations of QD and TiO2 concentrations, as well as thickness variations on photoluminescence efficiency (PLQY), has been systematically examined through simulation. High-efficiency color-conversion layer (CCL) have been successfully fabricated as a result of these simulations, leading to significant savings in time and material costs. By incorporating scattering particles of TiO2 in the CCL, we successfully scatter light and disperse QDs, effectively reducing self-aggregation and greatly improving illumination uniformity. Additionally, this design significantly enhances light absorption within the QD films. To enhance device reliability, we introduce a passivation protection layer using low-temperature atomic layer deposition (ALD) technology on the CCL surface. Moreover, we achieve impressive CCE values of 96.25% and 92.91% for the red and green CCLs, respectively, by integrating a modified distributed Bragg reflector (DBR) to suppress light leakage. Our hybrid structure design, in combination with an optical simulation system, not only facilitates rapid acquisition of optimal parameters for highly uniform and efficient color conversion in & mu;-LED displays but also expands the color gamut to achieve 128.2% in the National Television Standards Committee (NTSC) space and 95.8% in the Rec. 2020 standard. In essence, this research outlines a promising avenue towards the development of bespoke, high-performance & mu;-LED displays.

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