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Published December 28, 2021 | Published
Journal Article Open

Annealing-based manipulation of thermal phonon transport from light-emitting diodes to graphene

Abstract

We demonstrate that the thermal boundary conductivity (TBC) between graphene and GaN-based light-emitting diodes (LEDs) can be manipulated through thermal annealing, which is verified by measuring the acoustic phonons after reflection at the interface. Thermal annealing affects the interfacial morphology as evaluated by both the Raman spectra and the spatial profile of the graphene wrinkles in atomic force microscopy. By tracing the phase of ultrafast acoustic oscillations on the basis of the pump-probe scheme, we extract the phonon reflection coefficient at the interface as a function of annealing temperatures up to 400 ∘C. Specifically, the phase shift of transient phononic oscillations at the graphene/LED interface conveys the photoelastic response during the phonon transfer process and can be used for extracting the interfacial coupling rate, which is strongly enhanced around ≈200∘C. By incorporating the heat capacity and the interfacial coupling constants into TBC, along with analytical modeling based on the phonon reflection coefficients, we show that the TBC increases with the minimized surface roughness of graphene side at 200 ∘C. This new comprehensive TBC extraction scheme could spark further discussion on improving the heat dissipation of LEDs.

Additional Information

© 2021 Author(s). Published under an exclusive license by AIP Publishing. Submitted: 31 August 2021; Accepted: 02 December 2021; Published Online: 27 December 2021. Paper published as part of the special topic on Engineering and Understanding of Thermal Conduction in Materials. This research was supported by the Korea Electric Power Corporation (No. R17XA05-64), the Basic Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Science, ICT and Future Planning (No. 2018R1A2B6008101), and the Ministry of Education (No. 2021R1I1A2059710). The authors have no conflicts to disclose. DATA AVAILABILITY. The data that support the findings of this study are available from the corresponding author upon reasonable request.

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October 9, 2023
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October 24, 2023