English

Thermal Diffusion Boron Doping of Single-Crystal Diamond

Materials Science 2016-06-22 v1

Abstract

With the best overall electronic and thermal properties, single crystal diamond (SCD) is the extreme wide bandgap material that is expected to revolutionize power electronics and radio-frequency electronics in the future. However, turning SCD into useful semiconductors requires overcoming doping challenges, as conventional substitutional doping techniques, such as thermal diffusion and ion implantation, are not easily applicable to SCD. Here we report a simple and easily accessible doping strategy demonstrating that electrically activated, substitutional doping in SCD without inducing graphitization transition or lattice damage can be readily realized with thermal diffusion at relatively low temperatures by using heavily doped Si nanomembranes as a unique dopant carrying medium. Atomistic simulations elucidate a vacancy exchange boron doping mechanism that occur at the bonded interface between Si and diamond. We further demonstrate selectively doped high voltage diodes and half-wave rectifier circuits using such doped SCD. Our new doping strategy has established a reachable path toward using SCDs for future high voltage power conversion systems and for other novel diamond based electronic devices. The novel doping mechanism may find its critical use in other wide bandgap semiconductors.

Keywords

Cite

@article{arxiv.1603.01307,
  title  = {Thermal Diffusion Boron Doping of Single-Crystal Diamond},
  author = {Jung-Hun Seo and Henry Wu and Solomon Mikael and Hongyi Mi and James P. Blanchard and Giri Venkataramanan and Weidong Zhou and Sarah Gong and Dane Morgan and Zhenqiang Ma},
  journal= {arXiv preprint arXiv:1603.01307},
  year   = {2016}
}
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