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September 5, 2025Nature Communications34 citationsOpen Access

Van der Waals β-Ga2O3 thin films on polycrystalline diamond substrates

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JNJing NingZYZhichun YangHWHaidi Wu

Key Points

  • Epitaxial β-Ga2O3 films demonstrate a photo-to-dark current ratio of 106, confirming practical applications in electronic devices.
  • These films have a root mean square roughness of 6.71 nm, indicating high quality and crystallinity in their growth.
  • Utilizing polycrystalline diamond substrates, the interface retains an ultralow thermal boundary resistance of 2.82 m2·K/GW.
  • The study employs van der Waals forces to optimize the thin film growth on diamond, suggesting a significant advancement in thermal management solutions.

Abstract

The self-heating effect in wide bandgap semiconductor devices makes epitaxial Ga2O3 on diamond substrates crucial for thermal management. However, the lack of wafer-scale single-crystal diamond and severe lattice mismatch limit its industrial application. This study presents van der Waals β-Ga2O3 (VdW-β-Ga2O3) grown on high-thermal-conductivity polycrystalline diamond. VdW forces modify the coupling state between the single-crystal thin film and polycrystalline substrate. Tunable growth of ( 2¯01 ) VdW-β-Ga2O3 is achieved by leveraging the mismatch between graphene and the oxygen surface densities of varying crystal orientations and their oxygen-partial-pressure dependence. The 350 nm thick, high-crystallinity films exhibit a smallest rocking curve FWHM value of 0.18° and a root mean square roughness of 6.71 nm. Graphene alleviated interfacial thermal expansion stress; β-Ga2O3/diamond interface exhibits an ultralow thermal boundary resistance of 2.82 m2·K/GW. Photodetectors exhibit a photo-to-dark current ratio of 106 and a responsivity of 210 A/W, confirming the strategy's practicality and technological significance.

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Cite This Study

Ning et al. (2025) studied this question.

synapsesocial.com/papers/68bb46bd6d6d5674bccfe9e6https://doi.org/10.1038/s41467-025-63666-x
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