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X-ray quantification of oxygen groups on diamond surfaces for quantum applications

journal contribution
posted on 2024-11-03, 11:11 authored by Nikolai Dontschuk, Lila Rodgers, Jyh-Pin Chou, David Evans, Kane O'Donnell, H Johnson, Anton Tadich, Alex Schenk, A Gali, Nathalie De Leon, Alastair StaceyAlastair Stacey
Identifying the surface chemistry of diamond materials is increasingly important for device applications, especially quantum sensors. Oxygen-related termination species are widely used because they are naturally abundant, chemically stable, and compatible with stable nitrogen vacancy centres near the diamond surface. Diamond surfaces host a mixture of oxygen-related species, and the precise chemistry and relative coverage of different species can lead to dramatically different electronic properties, with direct consequences for near-surface quantum sensors. However, it is challenging to unambiguously identify the different groups or quantify the relative surface coverage. Here we show that a combination of x-ray absorption and photoelectron spectroscopies can be used to quantitatively identify the coverage of carbonyl functional groups on the { 100 } diamond surface. Using this method we reveal an unexpectedly high fraction of carbonyl groups ( > 9%) on a wide range of sample surfaces. Furthermore, through a combination of ab initio calculations and spectroscopic studies of engineered surfaces, we reveal unexpected complexities in the x-ray spectroscopy of oxygen terminated diamond surfaces. Of particular note, we find the binding energies of carbonyl-related groups on diamond differs significantly from other organic systems, likely resulting in previous misestimation of carbonyl fractions on diamond surfaces.

History

Journal

Materials for Quantum Technology

Volume

3

Number

045901

Issue

4

Start page

1

End page

12

Total pages

12

Publisher

Institute of Physics Publishing

Place published

United Kingdom

Language

English

Copyright

© 2023 The Author(s). Creative Commons Attribution 4.0 licence.

Former Identifier

2006127721

Esploro creation date

2024-01-17

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