Evaluation of Dispersion Stability and Absorption Performance Enhancement of Binary Nanoemulsion Fluids

2012 ◽  
Vol 36 (9) ◽  
pp. 895-900
Author(s):  
Jin-Ki Lee ◽  
Young-Jin Kim ◽  
Myung-Chul Shin ◽  
Se-Won Kim ◽  
Yong-Tae Kang
2012 ◽  
Vol 2012.61 (0) ◽  
pp. _310-1_-_310-2_
Author(s):  
Koichi NAGATANI ◽  
Nobuhisa ICHIHASHI ◽  
Nobusuke KOBASASHI ◽  
Yoshinori ITAYA

2015 ◽  
Vol 29 (2) ◽  
pp. 942-953 ◽  
Author(s):  
Xiaoshan Li ◽  
Liqi Zhang ◽  
Ying Zheng ◽  
Chuguang Zheng

2012 ◽  
Vol 433-440 ◽  
pp. 195-201 ◽  
Author(s):  
Wei Sheng ◽  
Wei Dong Wu ◽  
Hua Zhang ◽  
Chang Wei Pang ◽  
Run Yu Wu

The objective of this paper is to analyze the enhancement mechanism of ammonia bubble absorption performance by nanofluid. In this paper, the process of ammonia bubble absorption is divided into three different steps: the bubble growing, the gas absorption in liquid phase and the interface phase transfer. According to the analysis, nanofluid can enhance the diffusion coefficient or the absorption performance in each step, and enhance the whole absorption performance resultly; the gas mass transfer during the bubble growing is enhanced by nanofluid for the surface tension decrease; the main cause for the enhancement of the gas absorption in liquid phase is considered as the transport effect of nanoparticles carrying ammonia gas molecule and the vortex transfer effect arising from Brownian motion of nanoparticles; the main cause for the enhancement of the transfer at phase interface is considered as the Marangoni convection and the vortex transfer effect due to nanoparticles.


2019 ◽  
Vol 30 ◽  
pp. 18-27 ◽  
Author(s):  
Seonggon Kim ◽  
Ronghuan Xu ◽  
Wonhyeok Lee ◽  
Chang Kyoung Choi ◽  
Yong Tae Kang

2003 ◽  
Author(s):  
M. Bar-Eli ◽  
O. Lowengart ◽  
J. Goldberg ◽  
S. Epstein ◽  
R. D. Fosbury

2020 ◽  
Vol 91 (3) ◽  
pp. 30201
Author(s):  
Hang Yu ◽  
Jianlin Zhou ◽  
Yuanyuan Hao ◽  
Yao Ni

Organic thin film transistors (OTFTs) based on dioctylbenzothienobenzothiophene (C8BTBT) and copper (Cu) electrodes were fabricated. For improving the electrical performance of the original devices, the different modifications were attempted to insert in three different positions including semiconductor/electrode interface, semiconductor bulk inside and semiconductor/insulator interface. In detail, 4,4′,4′′-tris[3-methylpheny(phenyl)amino] triphenylamine (m-MTDATA) was applied between C8BTBTand Cu electrodes as hole injection layer (HIL). Moreover, the fluorinated copper phthalo-cyanine (F16CuPc) was inserted in C8BTBT/SiO2 interface to form F16CuPc/C8BTBT heterojunction or C8BTBT bulk to form C8BTBT/F16CuPc/C8BTBT sandwich configuration. Our experiment shows that, the sandwich structured OTFTs have a significant performance enhancement when appropriate thickness modification is chosen, comparing with original C8BTBT devices. Then, even the low work function metal Cu was applied, a normal p-type operate-mode C8BTBT-OTFT with mobility as high as 2.56 cm2/Vs has been fabricated.


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