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April 24, 2026Diamond and Related Materials0 citationsOpen Access

The interaction of acetonitrile with H-terminated and depassivated (100) diamond surfaces

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RGRebecca GriffinDRDaniel RobertsATAnton Tadich

Key Points

  • The aim is to investigate how acetonitrile interacts with hydrogen-terminated and depassivated diamond surfaces to understand nitrogen incorporation.
  • Utilized synchrotron-based x-ray photoelectron spectroscopy and near edge x-ray absorption spectroscopy.
  • Analyzed reactions under ultrahigh vacuum conditions.
  • Explored nitrogen stability across varying temperatures and atmospheric exposure.
  • Identified two surface-bound nitrogen species after thermal depassivation or synchrotron radiation exposure to acetonitrile.
  • No nitrogen adsorption detected on hydrogen-terminated diamond at room temperature.
  • Demonstrated the viability of a UHV molecular dosing approach for selective nitrogen functionalisation.

Abstract

Molecular adsorption on reactive semiconductor surfaces may enable novel surface functionalisation and atomically-precise dopant formation. In this work synchrotron-based x-ray photoelectron spectroscopy and near edge x-ray absorption spectroscopy are used to examine the interaction between acetonitrile and diamond (100) surfaces under ultrahigh vacuum (UHV) conditions. We observe two surface-bound nitrogen species on hydrogen terminated surfaces after thermal depassivation or following synchrotron radiation and subsequent exposure to acetonitrile, but find no evidence of nitrogen adsorption on the hydrogen-terminated diamond surface, at room temperature. Subsequent measurements explore the stability of the surface-bound nitrogen under various temperature conditions and with atmospheric exposure. While the nitrogen coverage achieved in this study is low, this study serves as a proof-of-concept demonstration of a UHV molecular dosing approach to selective nitrogen functionalisation of diamond surfaces as an alternative to plasma-based approaches. This development may be critical for proposed surface-based fabrication workflows using atomic placement of nitrogen-vacancy centres to create quantum devices.

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Cite This Study

Griffin et al. (2026) studied this question.

synapsesocial.com/papers/69eb0899553a5433e34b386ahttps://doi.org/10.1016/j.diamond.2026.113667
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