In this work, we investigate the surface transfer doping process that is induced between hydrogen-terminated (100) diamond and the metal oxides, MoO₃ and V₂O₅, through simulation using a semi-empirical Density Functional Theory (DFT) method. DFT was used to calculate the band structure and charge transfer process between these oxide materials and hydrogen terminated diamond. Analysis of the band structures, density of states, Mulliken charges, adsorption energies and position of the Valence Band Minima (VBM) and Conduction Band Minima (CBM) energy levels shows that both oxides act as electron acceptors and inject holes into the diamond structure. Hence, those metal oxides can be described as p-type doping materials for the diamond. Addition...
Surface transfer doping of hydrogen-terminated diamond has been achieved utilising V2O5 as a surface...
In this thesis, we presented three studies that explore adsorbates or acceptor layers for enhancing ...
© 2018 The Authors, some rights reserved. High electron affinity transition-metal oxides (TMOs) have...
In this work, we investigate the surface transfer doping process that is induced between hydrogen-te...
In this work we investigate the surface transfer doping effect induced between hydrogen terminated d...
In this work we investigate the surface transfer doping process induced between a hydrogen-terminate...
In this work we investigate the surface transfer doping process induced between a hydrogen-terminate...
Surface transfer doping of diamond has been demonstrated using MoO3 as a surface electron acceptor m...
Surface transfer doping of diamond has been demonstrated using MoO3 as a surface electron acceptor m...
Surface transfer doping of diamond has been demonstrated using MoO3 as a surface electron acceptor m...
This thesis presents a body of work which advances the use of single crystal hydrogen terminated dia...
The surface of hydrogen-terminated diamond (H-terminated diamond) supports a p-type surface conducti...
The surface transfer doping process allows for diamond to be used as an active semiconductor for the...
We report on optimisation of the environmental stability and high temperature operation of surface t...
Surface transfer doping of diamond using high electron affinity transition metal oxides (TMOs), such...
Surface transfer doping of hydrogen-terminated diamond has been achieved utilising V2O5 as a surface...
In this thesis, we presented three studies that explore adsorbates or acceptor layers for enhancing ...
© 2018 The Authors, some rights reserved. High electron affinity transition-metal oxides (TMOs) have...
In this work, we investigate the surface transfer doping process that is induced between hydrogen-te...
In this work we investigate the surface transfer doping effect induced between hydrogen terminated d...
In this work we investigate the surface transfer doping process induced between a hydrogen-terminate...
In this work we investigate the surface transfer doping process induced between a hydrogen-terminate...
Surface transfer doping of diamond has been demonstrated using MoO3 as a surface electron acceptor m...
Surface transfer doping of diamond has been demonstrated using MoO3 as a surface electron acceptor m...
Surface transfer doping of diamond has been demonstrated using MoO3 as a surface electron acceptor m...
This thesis presents a body of work which advances the use of single crystal hydrogen terminated dia...
The surface of hydrogen-terminated diamond (H-terminated diamond) supports a p-type surface conducti...
The surface transfer doping process allows for diamond to be used as an active semiconductor for the...
We report on optimisation of the environmental stability and high temperature operation of surface t...
Surface transfer doping of diamond using high electron affinity transition metal oxides (TMOs), such...
Surface transfer doping of hydrogen-terminated diamond has been achieved utilising V2O5 as a surface...
In this thesis, we presented three studies that explore adsorbates or acceptor layers for enhancing ...
© 2018 The Authors, some rights reserved. High electron affinity transition-metal oxides (TMOs) have...