TY - JOUR
T1 - Preparation of MgO/Au Multilayer Composite Films and Related Studies on Secondary Electron Emission Effect
AU - Wei, Qiang
AU - Wu, Shengli
AU - Wei, Kongting
AU - Li, Jie
AU - Hu, Wenbo
AU - Zhang, Jintao
N1 - Publisher Copyright:
© 2017, The Minerals, Metals & Materials Society.
PY - 2018/1/1
Y1 - 2018/1/1
N2 - MgO thin film has a high secondary electron emission coefficient. However, the accumulation of electric charge on the surface of the thin film will inhibit it. This paper mainly discusses this phenomenon with the method of reactive magnetron sputtering. We prepared a MgO/Au buffer layer by co-sputtering Au in the inner layer of MgO. The experiments show that Au distributes mainly in the gap of the MgO grains. Adding appropriate Au will promote the growth of MgO grains in the longitudinal direction, increase the conductivity of the material, suppress the accumulation of electric charge on the surface, and increase the secondary electron emission coefficient of the thin film. NiO was also used as the transition layer of MgO and substrate in the experiments, so as to increase the adhesion of the MgO films and improve the quality of the thin film. According to the experiment results, the maximum secondary electron emission coefficient of MgOAu multilayer composite film increased by 28.9% compared with that of the pure MgO film. Under the continuous irradiation of 200 eV incoming energy, the decay rate decreased from 35.2% to 30.6% in 1 h.
AB - MgO thin film has a high secondary electron emission coefficient. However, the accumulation of electric charge on the surface of the thin film will inhibit it. This paper mainly discusses this phenomenon with the method of reactive magnetron sputtering. We prepared a MgO/Au buffer layer by co-sputtering Au in the inner layer of MgO. The experiments show that Au distributes mainly in the gap of the MgO grains. Adding appropriate Au will promote the growth of MgO grains in the longitudinal direction, increase the conductivity of the material, suppress the accumulation of electric charge on the surface, and increase the secondary electron emission coefficient of the thin film. NiO was also used as the transition layer of MgO and substrate in the experiments, so as to increase the adhesion of the MgO films and improve the quality of the thin film. According to the experiment results, the maximum secondary electron emission coefficient of MgOAu multilayer composite film increased by 28.9% compared with that of the pure MgO film. Under the continuous irradiation of 200 eV incoming energy, the decay rate decreased from 35.2% to 30.6% in 1 h.
KW - MgO/Au composite film
KW - charging effect
KW - reactive magnetron sputtering
KW - secondary electron emission (SEE)
UR - https://www.scopus.com/pages/publications/85029177348
U2 - 10.1007/s11664-017-5768-2
DO - 10.1007/s11664-017-5768-2
M3 - 文章
AN - SCOPUS:85029177348
SN - 0361-5235
VL - 47
SP - 385
EP - 393
JO - Journal of Electronic Materials
JF - Journal of Electronic Materials
IS - 1
ER -