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Direct Epitaxial Approach to Achieve a Monolithic On-Chip Integration of a HEMT and a Single Micro-LED with a High-Modulation Bandwidth.


ABSTRACT: Visible light communications (VLC) require III-nitride visible micro-light-emitting diodes (?LEDs) with a high-modulation bandwidth. Such ?LEDs need to be driven at a high injection current density on a kA/cm2 scale, which is about 2 orders of magnitude higher than those for normal visible LED operation. ?LEDs are traditionally fabricated by dry-etching techniques where dry-etching-induced damages are unavoidable, leading to both a substantial reduction in performance and a great challenge to viability at a high injection current density. Furthermore, conventional biasing (which is simply applied across a p-n junction) is good enough for normal LED operation but generates a great challenge for a single ?LED, which needs to be modulated at a high injection current density and at a high frequency. In this work, we have proposed a concept for an epitaxial integration and then demonstrated a completely different method that allows us to achieve an epitaxial integration of a single ?LED with a diameter of 20 ?m and an AlGaN/GaN high-electron-mobility transistor (HEMT), where the emission from a single ?LED is modulated by tuning the gate voltage of its HEMT. Furthermore, such a direct epitaxial approach has entirely eliminated any dry-etching-induced damages. As a result, we have demonstrated an epitaxial integration of monolithic on-chip ?LED-HEMT with a record modulation bandwidth of 1.2 GHz on industry-compatible c-plane substrates.

SUBMITTER: Cai Y 

PROVIDER: S-EPMC7885730 | biostudies-literature | 2021 Jan

REPOSITORIES: biostudies-literature

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Direct Epitaxial Approach to Achieve a Monolithic On-Chip Integration of a HEMT and a Single Micro-LED with a High-Modulation Bandwidth.

Cai Yuefei Y   Haggar Jack I H JIH   Zhu Chenqi C   Feng Peng P   Bai Jie J   Wang Tao T  

ACS applied electronic materials 20210114 1


Visible light communications (VLC) require III-nitride visible micro-light-emitting diodes (μLEDs) with a high-modulation bandwidth. Such μLEDs need to be driven at a high injection current density on a kA/cm<sup>2</sup> scale, which is about 2 orders of magnitude higher than those for normal visible LED operation. μLEDs are traditionally fabricated by dry-etching techniques where dry-etching-induced damages are unavoidable, leading to both a substantial reduction in performance and a great chal  ...[more]

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