Enhancement to the conductivity of surface transfer-doped (111) diamond through thermochemical surface etching

S S. A. Yianni (Department of Mathematical and Physical Sciences, School of Computing, Engineering and Mathematical Sciences, La Trobe University 1 , Melbourne, Victoria 3086,) A A. Stacey (School of Science, RMIT University 3 , Melbourne, Victoria 3001,) D D. L. Creedon (School of Physics, University of Melbourne 5 , Grattan Street, Parkville, Victoria 3010,) K K. Xing (School of Physics and Astronomy, Monash University 7 , Clayton, Victoria 3800,) A A. K. Schenk (Department of Mathematical and Physical Sciences, School of Computing, Engineering and Mathematical Sciences, La Trobe University 1 , Melbourne, Victoria 3086,) C C. I. Pakes (Department of Mathematical and Physical Sciences, School of Computing, Engineering and Mathematical Sciences, La Trobe University 1 , Melbourne, Victoria 3086,)

Abstract

The use of a transition metal catalyzed thermochemical etching method for improving the carrier transport properties of the near-surface two-dimensional (2D) hole gas in surface transfer-doped hydrogen-terminated (111) diamond is demonstrated. Using Ni0.8Cr0.2 films deposited and annealed to a temperature of 900 °C, with up to three etch cycles, preferential (111) surface etching produces large terraces exceeding 10 μm in size with a surface microroughness, σRMS2λ, that is two orders of magnitude lower than for the pre-etched (111) surface. Magnetotransport measurements on hydrogen-terminated Hall bars engineered on the pre- and post-etched surfaces and rendered conductive by the adsorbed water layer formed on exposure to ambient conditions demonstrate that this etching causes an improvement in the hole mobility by an order of magnitude, resulting in a measured sheet resistivity of 1.04  kΩ/sq at a temperature of 4.2 K without gating.

Article Details

Volume / Issue Vol. 126, Issue 7
Published February 17, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (6)

S

S. A. Yianni

Department of Mathematical and Physical Sciences, School of Computing, Engineering and Mathematical Sciences, La Trobe University 1 , Melbourne, Victoria 3086,

A

A. Stacey

School of Science, RMIT University 3 , Melbourne, Victoria 3001,

D

D. L. Creedon

School of Physics, University of Melbourne 5 , Grattan Street, Parkville, Victoria 3010,

K

K. Xing

School of Physics and Astronomy, Monash University 7 , Clayton, Victoria 3800,

A

A. K. Schenk

Department of Mathematical and Physical Sciences, School of Computing, Engineering and Mathematical Sciences, La Trobe University 1 , Melbourne, Victoria 3086,

C

C. I. Pakes

Department of Mathematical and Physical Sciences, School of Computing, Engineering and Mathematical Sciences, La Trobe University 1 , Melbourne, Victoria 3086,