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Dive into the research topics where Guang Yuan is active.

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Featured researches published by Guang Yuan.


Applied Physics Letters | 2010

Work functions of capped (5, 5) and (9, 0) single-walled carbon nanotubes adsorbed with alkali-metal atoms

Shunfu Xu; Guang Yuan; Chun Li; Zhi-Jun Jia; Hitenori Mimura

The influence of alkali metal (Li or Cs) adsorption on the work functions of capped (5, 5) and (9, 0) single-walled carbon nanotubes (CNTs) was investigated using first-principles calculations. After Cs adsorption, the decrease in the work functions of (5, 5) and (9, 0) CNTs was more pronounced than that of Li-adsorbed CNTs. The decline in the work functions was due to the increase in Fermi levels and the decrease in vacuum levels induced by electrons transfer from the alkali atom to the CNTs. A vacancy defect raised the work functions of the pristine and alkali-metal-adsorbed CNTs.


Journal of Vacuum Science & Technology. B. Nanotechnology and Microelectronics: Materials, Processing, Measurement, and Phenomena | 2011

Role of alkali metal adsorption and defect position on the work function of a (5, 5) capped single-walled carbon nanotube

Shunfu Xu; Guang Yuan; Chun Li; H. Mimura

The authors used first-principles calculations to investigate the influence of alkali metal (Li/Na/Cs) adsorption and defect position on the work function of a (5, 5) armchair single-walled carbon nanotube (CNT) with a capped edge. The atomic Cs adsorption can more effectively reduce the work function of the CNT than the atomic Li/Na adsorption. Adsorption positions have a measurable impact on the work function of the CNT. Any vacancy defect on the tip can raise the work function of the CNT regardless of whether or not an alkali metal atom is absorbed. The variations of work functions are mainly attributed to the change of Fermi levels induced by charge redistributions. The alkali metal adsorption can also transform the semiconducting CNT into a metallic tube, which is significant for the CNTs as a promising field emission cold cathode material.


Journal of Vacuum Science & Technology. B. Nanotechnology and Microelectronics: Materials, Processing, Measurement, and Phenomena | 2010

Simulation of self-focusing electron emittera)

Guang Yuan; Jinjing Jiang; Chun Li; Weidong Liu; H. Mimura

A new structure of field electron emitter was proposed to reduce the dispersion of electron beam emitted. In this structure the gate electrode is placed at the center and surrounded by cathode electrode, and then the gate electrode not only plays extracting electrons from cathode but also focusing the electrons emitted. The distribution of the electric field and the electron trajectory of the emitter were investigated and the optimum parameters including geometrical and electrical parameters about the electron emitter are obtained.


Journal of Vacuum Science & Technology. B. Nanotechnology and Microelectronics: Materials, Processing, Measurement, and Phenomena | 2015

Field emission characteristics of pristine and lithium-doped boron nanotubes: A theoretical study

Shunfu Xu; Weihui Liu; Ziliang Zhu; Yan Meng; Jiesheng Wang; Chun Li; Guang Yuan

First-principles calculations are used in order to investigate the electronic and field emission properties of capped (5, 5) and (9, 0) boron nanotubes (BNTs), which indicate that the electric currents of the (5, 5) and (9, 0) BNTs under an applied electric field are very close to those of carbon nanotubes, and pentagons and hexagons on the tips of the BNTs are the most possible spots for emitting tunneling electrons under an external electric field. In addition, the work functions of the (5, 5) and (9, 0) BNTs decrease linearly with applied electric fields. The significant influence of lithium adsorption on field emission characteristics of BNTs is also studied. The work functions of BNTs decrease distinctly after lithium adsorption, while the emission currents increase by a large margin. Moreover, the lithium adsorption can improve the electric conductivity of a mixture of BNTs.


international vacuum nanoelectronics conference | 2009

Effect of field penetration on electron energy distribution of field emission from N-Si emitter

Guang Yuan; Yoichiro Neo; Hidetaka Shimawaki; Hidenori Mimura

Field electron emission from silicon emitter is attractive one of electron source because not only it can be integrated with functional circuits, but also can be achieved high performance(1). The characteristic of field emission from silicon emitter, however, is different from metals(2): there is an obvious peak shift of the electron energy distribution (Si-EED) with external field. The surface states are considerable issue to elucidate the emission mechanism and recent theoretical calculation shows this issue is also important for the emission from metals(3). Besides the surface states, the field penetration is another important term for silicon like semiconductor after considering the low conductivity. The field penetration will cause a band-bending and the Si-EED shift to low energy side. Furthermore, the band-bending will made the electron emission from other conduction bands and multi peaks are possible as shown in Fig.1.


Journal of Vacuum Science & Technology. B. Nanotechnology and Microelectronics: Materials, Processing, Measurement, and Phenomena | 2014

Modulation of the work function of fullerenes C60 and C70 by alkaline earth metal adsorption: A theoretical study

Yueqiang Sun; Shunfu Xu; Weihui Liu; Zeng-Sheng Li; Xinqing Zheng; Chun-E Sang; Xiu-Mei Zhu; Xiaochun Zhang; Chun Li; Guang Yuan; H. Mimura

The significant influence of alkaline earth metal (Be/Mg/Ca/Sr/Ba/Ra) adsorption on work functions of fullerenes C60 and C70 was investigated by first-principles calculations. The work functions of fullerenes C60 and C70 with Ca/Sr/Ba/Ra adatoms decrease linearly with the electronegativities of the alkaline earth metals. The work functions are also affected considerably by adsorption positions. The variations of the work functions depend on the changes of Fermi level (which is attributed to charge transfer) and the changes of vacuum levels (which is attributed to induced dipole moments). Moreover, the alkaline earth metal adsorption can also improve the electric conductivity of a fullerene mixture.


international vacuum nanoelectronics conference | 2012

Study on self-focusing performance of electron beam in electron emitter with cone shaped array

Chun Li; Guang Yuan; Guangjun Yuan; Guo Q; Xiaoyan Fan

In recent years, field emission display (FED) has been attracting much attention in the science community. It is a key technology for FED to design an excellent cathode structure. Rational designs can decrease cost and simplify fabrication technology in the preparation process of the cathode. A field electron emitter with a novel self-focusing cathode has been proposed. And it can be easily fabricated with low cost. Besides, field emission materials are also an important research field for FED application. In this paper, patterned and uniform nanocone array films with good emission properties were used as the electron source. The electron trajectory in this emitter and the influences of the array films with various relative permittivities on the distribution of the electric field investigated by finite element method will be reported.


international vacuum electron sources conference and nanocarbon | 2010

Roles of alkali-metal adsorption and defect position on work functions of capped single-wall carbon nanotubes

Shunfu Xu; Guang Yuan; Chun Li; Zhen-Ning Gao; Xiang-Fei Kong; Hong-Qun Zhang; Guo Q

Summary form only given. The influence of alkali-metal adsorption positions and defects positions on work functions of (5, 5) single-walled carbon nanotubes (CNTs) with a capped edge had been investigated by first-principles calculations. An single-walled armchair (5, 5) CNT with a capped edge was assumed. A single vacancy defect was created by removing a carbon atom from different atomic layers (which were labeled as T1-T4 in FIG. 1(a)). The alkali-metal adatoms (Li/Na/Cs) were located above the center of the pentagons or hexagons (which were labeled as P1-P4 in Fig. 1(b)) on the caps for the perfect CNT (P-CNT), while they were associated with defective CNTs (D-CNTs) on the vacancy defects. After Li/Na/Cs adsorption, the work functions of the Pand D-CNTs along the Z-axis and the X-axis (X-WF) decrease significantly. Compared with adsorption of one Li/Na atom, the work functions of CNTs in axial or radial directions decreased more obviously after Cs adsorption. For comparison purpose, FIG. 1(c) summarizes the work functions of P-CNTs and D-CNTs (Ti) with alkali-metal adatoms on the top, plotted against the electronegativity of Li, Na and Cs. All the axial and radial work functions of (5, 5) Pand D-CNTs with Li/Na/Cs on P1 increase linearly with the electronegativity. The curves for the axial or radial work functions are almost parallel to each other. We plot the work functions of the (5, 5) P-CNT with alkali-metal adatoms on different positions in FIG. 1(d)-(e). For the adatom-P-CNT systems, there is no significant difference between the work functions in radial direction (except lower work functions in P3), while the work functions in axial direction actually depend on the adsorption position of alkali-metal atoms. The adatom-P-CNT systems have the lowest work functions with alkali-metal adatoms on P1 in axial direction and on P3 in radial direction. The work functions of different D-CNTs and adatom-D-CNTs systems with one vacancy defect in different atomic layers are shown in FIG. 1(f)-(g). One vacancy defect could raise the work functions of the CNTs. For the adatom-D-CNTs systems, there is no visible trend between the work functions in axial direction, while the work functions in radial direction show a monotonously decrease from T1 to T4. The adatom-D-CNTs systems have the lowest work functions with the Li adatom on T4 and the Na/Cs adatom on T2 in axial direction and with alkali-metal adatoms on T3 in radial direction. Since the electronegativity of Li/Na/Cs is less than carbon, the Li/Na/Cs adatoms on the CNTs are easily ionized. The charge density redistributions or charge transfer will lead to increase of the Fermi levels of the Pand D-CNT. The variation of work functions can be induced by either an enhanced (reduced) surface dipole moments, or a lowering (rising) of its intrinsic bulk Fermi levels [1]. Our results show that the changes of the work functions mainly come from the shifts of Fermi levels. The induced dipole moments lead to a minor decrease in the work functions.


international vacuum nanoelectronics conference | 2009

Simulation of self-focusing electron emitter

Guang Yuan; Jinjing Jiang; Weidong Liu; H. Mimura

In this paper, a self-focusing field electron emitter was proposed and simulated with finite element method. In the electron emitter proposed, the gate electrode is placed on center and surrounded by cathode. Therefore, gate electrode is not only to extract the electron from cathode, but also to focus the electron beam. The simulated results show a significant decrease of the dispersion of electron beam.


Diamond and Related Materials | 2012

Alkali-earth metal adsorption behaviors on capped single-walled carbon nanotubes based on first-principle calculations

Weihui Liu; Shunfu Xu; Chun Li; Guang Yuan

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Chun Li

Ocean University of China

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Shunfu Xu

Ocean University of China

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Weihui Liu

Ocean University of China

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Guo Q

Ocean University of China

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Jiesheng Wang

Ocean University of China

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Jinjing Jiang

Ocean University of China

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Xiaochun Zhang

University of Science and Technology

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Xinqing Zheng

University of Science and Technology

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Yueqiang Sun

University of Science and Technology

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