First-principle investigation on the interfacial structure evolution of the δ'/θ'/δ' composite precipitates in Al-Cu-Li alloys

2020 ◽  
Vol 58 ◽  
pp. 205-214
Author(s):  
Shuo Wang ◽  
Chi Zhang ◽  
Xin Li ◽  
Houbing Huang ◽  
Junsheng Wang
2018 ◽  
Vol 44 (14) ◽  
pp. 16528-16534 ◽  
Author(s):  
Minjuan Wang ◽  
Hao Huang ◽  
Xu Huang ◽  
Mao Wen ◽  
Kwang Leong Choy ◽  
...  

2022 ◽  
Vol 896 ◽  
pp. 163090
Author(s):  
Hao Tang ◽  
Hui Bai ◽  
Xiao Yang ◽  
Yu Cao ◽  
Kechen Tang ◽  
...  

2012 ◽  
Vol 24 (6) ◽  
pp. 1483-1487
Author(s):  
万小波 Wan Xiaobo ◽  
唐昶环 Tang Changhuan ◽  
杜凯 Du Kai ◽  
张林 Zhang Lin ◽  
王妮 Wang Ni ◽  
...  

2017 ◽  
Vol 129 ◽  
pp. 352-360 ◽  
Author(s):  
S.Y. Duan ◽  
C.L. Wu ◽  
Z. Gao ◽  
L.M. Cha ◽  
T.W. Fan ◽  
...  

2019 ◽  
Vol 52 (4) ◽  
pp. 167-173 ◽  
Author(s):  
Shiyang Sun ◽  
Shouye Sun ◽  
Yuan Ren ◽  
Xin Tan ◽  
Pingping Xu

Materials ◽  
2020 ◽  
Vol 13 (2) ◽  
pp. 323 ◽  
Author(s):  
Zhan Qu ◽  
Yali Su ◽  
Li Sun ◽  
Feng Liang ◽  
Guohe Zhang

Using the first-principle calculation that is based on the density functional theory (DFT), our group gains some insights of the structural, electronic and optical properties of two brand new types of BiOI/TiO2 heterojunctions: 1I-terminated BiOI {001} surface/TiO2 (1I-BiOI/TiO2) and BiO-terminated BiOI {001} surface/TiO2 (BiO-BiOI/TiO2). The calculation illustrates that BiOI/TiO2 heterojunction has excellent mechanical stability, and it shows that there is a great possibility for the BiOI/TiO2 heterojunction to be used in visible-light range, hence the photocatalytic ability can be enhanced dramatically. Especially, from the calculation, we discovered that there are two specific properties: the band-gap of 1I-BiOI/TiO2 heterojunction reduces to 0.28 eV, and the BiO-BiOI/TiO2 semiconductor material changes to n-type. The calculated band offset (BOs) for 1I-BiOI/TiO2 heterojunction indicates that the interfacial structure contributes a lot to a suitable band alignment which can disperse the photo-generated carriers into the opposite sides of the interface, so this could effectively weaken the electron-hole recombination. Meanwhile, the built-in potential around the interface accelerates the movement of the photo-generated electron-hole pairs. We believe this is the reason that the BiOI/TiO2 material shows perfect photocatalytic performance. This paper can provide theoretical support for the related research, especially the further research of the BiOI-based material.


Author(s):  
J.K. Weiss ◽  
M. Gajdardziska-Josifovska ◽  
M. R. McCartney ◽  
David J. Smith

Interfacial structure is a controlling parameter in the behavior of many materials. Electron microscopy methods are widely used for characterizing such features as interface abruptness and chemical segregation at interfaces. The problem for high resolution microscopy is to establish optimum imaging conditions for extracting this information. We have found that off-axis electron holography can provide useful information for the study of interfaces that is not easily obtained by other techniques.Electron holography permits the recovery of both the amplitude and the phase of the image wave. Recent studies have applied the information obtained from electron holograms to characterizing magnetic and electric fields in materials and also to atomic-scale resolution enhancement. The phase of an electron wave passing through a specimen is shifted by an amount which is proportional to the product of the specimen thickness and the projected electrostatic potential (ignoring magnetic fields and diffraction effects). If atomic-scale variations are ignored, the potential in the specimen is described by the mean inner potential, a bulk property sensitive to both composition and structure. For the study of interfaces, the specimen thickness is assumed to be approximately constant across the interface, so that the phase of the image wave will give a picture of mean inner potential across the interface.


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