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Monolithic Flexible Vertical GaN Light-Emitting Diodes for a Transparent Wireless Brain Optical Stimulator

  • Han Eol Lee
  • , Je Hyuk Choi
  • , Seung Hyun Lee
  • , Minju Jeong
  • , Jung Ho Shin
  • , Daniel J. Joe
  • , Do Hyun Kim
  • , Chang Wan Kim
  • , Jung Hwan Park
  • , Jae Hee Lee
  • , Daesoo Kim
  • , Chan Soo Shin
  • , Keon Jae Lee*
  • *Corresponding author for this work
  • Korea Advanced Institute of Science and Technology
  • Korea Advanced Nano Fab Center

Research output: Contribution to journalJournal articlepeer-review

Abstract

Flexible inorganic-based micro light-emitting diodes (µLEDs) are emerging as a significant technology for flexible displays, which is an important area for bilateral visual communication in the upcoming Internet of Things era. Conventional flexible lateral µLEDs have been investigated by several researchers, but still have significant issues of power consumption, thermal stability, lifetime, and light-extraction efficiency on plastics. Here, high-performance flexible vertical GaN light-emitting diodes (LEDs) are demonstrated by silver nanowire networks and monolithic fabrication. Transparent, ultrathin GaN LED arrays adhere to a human fingernail and stably glow without any mechanical deformation. Experimental studies provide outstanding characteristics of the flexible vertical μLEDs (f-VLEDs) with high optical power (30 mW mm−2), long lifetime (≈12 years), and good thermal/mechanical stability (100 000 bending/unbending cycles). The wireless light-emitting system on the human skin is successfully realized by transferring the electrical power f-VLED. Finally, the high-density GaN f-VLED arrays are inserted onto a living mouse cortex and operated without significant histological damage of brain.

Original languageEnglish
Article number1800649
JournalAdvanced Materials
Volume30
Issue number28
DOIs
StatePublished - 2018.07.12

Keywords

  • bioelectronics
  • flexible GaN vertical light-emitting diodes
  • light-emitting diodes
  • transparent micro-light-emtting-diodes
  • wireless power transfer

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