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Enhanced electron field emission properties by tuning the microstructure of ultrananocrystalline diamond film
被引:32
|作者:
Cheng, Hsiu-Fung
[1
]
Chiang, Horng-Yi
[1
]
Horng, Chuang-Chi
[1
]
Chen, Huang-Chin
[2
]
Wang, Chuan-Sheng
[2
,3
]
Lin, I-Nan
[2
]
机构:
[1] Natl Taiwan Normal Univ, Dept Phys, Taipei 116, Taiwan
[2] Tamkang Univ, Dept Phys, Tamsui 251, Taiwan
[3] Technol & Sci Inst No Taiwan, Taipei 112, Taiwan
关键词:
RAMAN-SPECTROSCOPY;
NANODIAMOND FILMS;
NANO-DIAMOND;
DEPOSITION;
GROWTH;
CARBON;
D O I:
10.1063/1.3544482
中图分类号:
O59 [应用物理学];
学科分类号:
摘要:
Synthesis of microcrystalline-ultrananocrystalline composite diamond (MCD-UNCD) films, which exhibit marvelous electron field emission (EFE) properties, was reported. The EFE of MCD-UNCD composite diamond film can be turned on at a low field as 6.5 V/mu m and attain large EFE current density about 1.0 mA/cm(2) at 30 V/mu m applied field, which is better than the EFE behavior of the nondoped planar diamond films ever reported. The MCD-UNCD films were grown by a two-step microwave plasma enhanced chemical vapor deposition (MPECVD) process, including forming an UNCD layer in CH4/Ar plasma that contains no extra H-2, followed by growing MCD layer using CH4/H-2/Ar plasma that contains large proportion of H-2. Microstructure examinations using high resolution transmission electron microscopy shows that the secondary MPECVD process modifies the granular structure of the UNCD layer, instead of forming a large grain diamond layer on top of UNCD films. The MCD-UNCD composite diamond films consist of numerous ultrasmall grains (similar to 5 nm in size), surrounding large grains about hundreds of nanometer in size. Moreover, there exist abundant nanographites in the interfacial region between the grains that were presumed to form interconnected channels for electron transport, resulting in superior EFE properties for MCD-UNCD composite films. (C) 2011 American Institute of Physics. [doi:10.1063/1.3544482]
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