Templated wide band-gap nanostructures

被引:40
作者
Alizadeh, A [1 ]
Sharma, P
Ganti, S
LeBoeuf, SF
Tsakalakos, L
机构
[1] Gen Elect, Global Res Ctr, Niskayuna, NY 12309 USA
[2] Univ Houston, Dept Mech Engn, Houston, TX USA
关键词
D O I
10.1063/1.1737477
中图分类号
O59 [应用物理学];
学科分类号
摘要
In this two-pronged work we report (a) a study of defect nucleation in three-dimensional confined nanoislands and (b) a surface-elasticity induced size effect in the optoelectronic properties of embedded and templated semiconducting nanostructures. Several key features in the design of nanostructure templates are analyzed and dislocation free contour maps are presented for combination of various lattice mismatches, substrates, and geometrical dimensions. Unlike the case for thin epitaxial films, it is found that for nanostructures, below a certain critical lateral dimension, dislocation free structures of any thickness can be grown. With regards to the optoelectronic properties of nanostructures, while size dependency due to quantum confinement and electrostatic interactions are well known, we show that an additional size-dependent strain is caused by the distinct elastic behavior of surfaces and interfaces at the nanoscopic scale compared to the macroscopic scale. This is in contrast to the usual way strain is linked to optoelectronic properties, i.e., via classical elasticity, which ignores surface energies and is intrinsically size independent. Surface strains appear to be only influential in the nanometer regime due to appreciable surface-to-volume ratios. Among our major conclusions are that errors as large as 100 meV in band-gap prediction can incur if this size-dependent surface effect is ignored. (C) 2004 American Institute of Physics.
引用
收藏
页码:8199 / 8206
页数:8
相关论文
共 50 条
[21]   INTERPRETATION OF THERMAL ACTIVATION ENERGIES IN WIDE BAND-GAP MATERIALS [J].
SCHMIDLIN, FW ;
ROBERTS, GG .
PHYSICAL REVIEW LETTERS, 1968, 20 (21) :1173-+
[22]   Wide band-gap semiconductors for cold cathodes: A theoretical analysis [J].
Lerner, P ;
Cutler, PH ;
Miskovsky, NM .
III-V NITRIDES, 1997, 449 :1109-1114
[23]   Theoretical Predictions for Codoping Properties in Wide Band-gap Semiconductors [J].
Katayama-Yoshida, Hiroshi ;
Yamamoto, Tetsuya .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2000, 39 (01) :229-236
[24]   Synthesis and photoluminescence properties of a wide band-gap pyridone derivatives [J].
Guo, Yun ;
Chen, Liu-Qing ;
Wu, Cong-Ling ;
Bai, Qing-Yun ;
Liu, Xu-Guang ;
Wang, Hua ;
Xu, Bing-She .
Gongneng Cailiao/Journal of Functional Materials, 2014, 45 (12) :12065-12069
[25]   A Novel Compact EBG Structures With relative Wide Band-gap [J].
Liu, Tao ;
Cao, Xiang-yu ;
Wen, Xi ;
Lin, Bao-qin .
2007 ASIA PACIFIC MICROWAVE CONFERENCE, VOLS 1-5, 2007, :558-560
[26]   Wide band-gap oxide nanoparticles as potential drug carriers [J].
Lipinski, Waldemar ;
Kaszewski, Jaroslaw ;
Gajewski, Zdzislaw ;
Godlewski, Marek ;
Godlewski, Michal M. .
MEDYCYNA WETERYNARYJNA-VETERINARY MEDICINE-SCIENCE AND PRACTICE, 2017, 73 (10) :657-660
[27]   Transmission electron microscopy of wide band-gap semiconductor layers [J].
Pécz, B .
PHYSICA STATUS SOLIDI A-APPLIED RESEARCH, 2003, 195 (01) :214-221
[28]   Pseudopotential study of wide band-gap GaN at high pressures [J].
N Bouarissa ;
H Algarni ;
M Ajmal Khan ;
O A Al-Hagan ;
T F Alhuwaymel .
Pramana, 2020, 94
[29]   A novel wide band-gap structure for improved signal integrity [J].
Appasani, B. ;
Gupta, N. .
INTERNATIONAL JOURNAL OF MICROWAVE AND WIRELESS TECHNOLOGIES, 2016, 8 (03) :591-596
[30]   Ablation characteristics of femtosecond laser on wide band-gap ceramics [J].
Jiang, T. (jiangtao8603463@126.com), 1600, Chinese Society of Astronautics (41)