Literature DB >> 33726271

Implantation energy- and size-dependent light output of enhanced-efficiency micro-LED arrays fabricated by ion implantation.

Feng Xu, Yi Tan, Zili Xie, Baoshun Zhang.   

Abstract

A new process is presented for fabricating enhanced-efficiency micro-pixelated vertical-structured light-emitting diode (µVLED) arrays based on ion-implantation technology. High-resistivity selective regions are locally introduced in the n-GaN layer by ion implantation and then used as effective and non-destructive electrical isolation for realizing µVLED arrays with ultra-small pixel diameters. The implantation energy-dependent and size-dependent opto-electrical characteristics of fluorine (F-) implanted µVLED arrays are investigated systematically. The results show that the optimally designed F- ion implantation not only can achieve smaller reverse leakage current but also can realize ion-induced thermal relaxation effectively and is more suited for fabricating high-resolution µVLED arrays with higher optical output power. For the F--implanted µVLED array with pixel diameters of 10 µm, a measured output power density reaches a value of 82.1 W cm-2 at a high injection current density of 220 A cm-2, before power saturation. Further, the output power densities and external quantum efficiencies of F--implanted µVLED arrays with pixel diameters less than 10µm show strong dependences on pixel size due to the presence of defects-related SRH process. So, the high-efficiency µVLED arrays with ultra-small pixel sizes could be fabricated by an appropriately designed ion implantation combined with control of defect densities to meet the industrial requirement of microdisplay applications.

Entities:  

Year:  2021        PMID: 33726271     DOI: 10.1364/OE.421272

Source DB:  PubMed          Journal:  Opt Express        ISSN: 1094-4087            Impact factor:   3.894


  1 in total

Review 1.  Ge Ion Implanted Photonic Devices and Annealing for Emerging Applications.

Authors:  Xingshi Yu; Xia Chen; Milan M Milosevic; Weihong Shen; Rob Topley; Bigeng Chen; Xingzhao Yan; Wei Cao; David J Thomson; Shinichi Saito; Anna C Peacock; Otto L Muskens; Graham T Reed
Journal:  Micromachines (Basel)       Date:  2022-02-12       Impact factor: 2.891

  1 in total

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