TY - JOUR
T1 - Electro-optical analysis in determining the field emission characteristics of carbon nanofibers on an acute tip substrate
AU - Shimoi, Norihiro
AU - Tanaka, Yasumitsu
N1 - Funding Information:
This work was partially supported by the Global COE Program “Materials Integration International Center of Education and Research, Tohoku University,” MEXT, Japan. The authors are indebted to Mr. K. Morita, Dr. Y. Sakai, Prof. S. Kita and Prof. Emeritus F. Okuyama of NIT for helpful discussions on FE experimental data. We kindly thank Mr. Norihiro Ohse of Sony Corporation for his great help in this study.
PY - 2012/9
Y1 - 2012/9
N2 - The shape of an acute tungsten (W) tip substrate coated with palladium (Pd) and carbon nanofibers (CNFs) was optimized in order to generate efficient field emission (FE) currents. By adjusting the apex angle of the tip, we succeeded in controlling the FE properties and electron beam convergence. When the apex angle was close to 50°, a narrow convergence of electron beams was observed. By employing an original computation tool based on the surface charge method, we conducted a numerical analysis of the convergence mechanism of the FE device; this was dependent on FE properties, and displayed its maximum around the same apex angle. By simulating the electrical field distribution above the CNF, we concluded that the optimum values of the electro-optical properties of CNFs on the tip substrate were found at an angle of approximately 50° with a narrow divergence angle. After determining the relationship between the divergence angle and the tip apex angle, the electron emission property was optimized. Analysis of the characteristics of the maximum electron emission state using our computation method indicated that an acute tip covered with CNFs has potential for use as a cathode in electrical devices which require a large FE current with low power consumption.
AB - The shape of an acute tungsten (W) tip substrate coated with palladium (Pd) and carbon nanofibers (CNFs) was optimized in order to generate efficient field emission (FE) currents. By adjusting the apex angle of the tip, we succeeded in controlling the FE properties and electron beam convergence. When the apex angle was close to 50°, a narrow convergence of electron beams was observed. By employing an original computation tool based on the surface charge method, we conducted a numerical analysis of the convergence mechanism of the FE device; this was dependent on FE properties, and displayed its maximum around the same apex angle. By simulating the electrical field distribution above the CNF, we concluded that the optimum values of the electro-optical properties of CNFs on the tip substrate were found at an angle of approximately 50° with a narrow divergence angle. After determining the relationship between the divergence angle and the tip apex angle, the electron emission property was optimized. Analysis of the characteristics of the maximum electron emission state using our computation method indicated that an acute tip covered with CNFs has potential for use as a cathode in electrical devices which require a large FE current with low power consumption.
KW - Carbon nanofiber
KW - Divergence angle
KW - Electro-optics
KW - Electron field emission
KW - Surface charge method
KW - Tip substrate
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U2 - 10.1016/j.diamond.2012.07.001
DO - 10.1016/j.diamond.2012.07.001
M3 - Article
AN - SCOPUS:84864210486
SN - 0925-9635
VL - 29
SP - 23
EP - 28
JO - Diamond and Related Materials
JF - Diamond and Related Materials
ER -