Synthesis of Nanostructure InxGa1-xN Bulk Alloys and Thin Films for LED Devices

被引:5
|
作者
Kashyout, Abd El-Hady B. [1 ]
Fathy, Marwa [1 ]
Gad, Sara [1 ]
Badr, Yehia [2 ]
Bishara, Ahmed A. [3 ]
机构
[1] City Sci Res & Technol Applicat SRTA City, Elect Mat Res Dept, Adv Technol & New Mat Res Inst, Alexandria 21934, Egypt
[2] Cairo Univ, Natl Inst Laser Enhanced Sci, Laser Interact Matter Dept, Cairo 94142, Egypt
[3] Alexandria Univ, Dept Phys, Fac Sci, Alexandria 21543, Egypt
关键词
LED; InxGa1-xN; nanostructures; OPTICAL-PROPERTIES; BAND-GAP; INGAN; GROWTH; ARRAYS; LAYERS; MOCVD; INN; SI;
D O I
10.3390/photonics6020044
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In this study, we investigated an innovative method for the fabrication of nanostructure bulk alloys and thin films of indium gallium nitride (InxGa1-xN) as active, thin films for light-emitting diode (LED) devices using both crystal growth and thermal vacuum evaporation techniques, respectively. These methods resulted in some tangible improvements upon the usual techniques of InxGa1-xN systems. A cheap glass substrate was used for the fabrication of the LED devices instead of sapphire. Indium (In) and Gallium (Ga) metals, and ammonia (NH3) were the precursors for the alloy formation. The alloys were prepared at different growth temperatures with compositions ranging from 0.1 <= x <= 0.9. InxGa1-xN alloys at 0.1 <= x <= 0.9 had different crystallinities with respect to X-Ray diffraction (XRD) patterns where the energy bandgap that was measured by photoluminescence (PL) fell in the range between 1.3 and 2.5 eV. The bulk alloys were utilized to deposit the thin films onto the glass substrate using thermal vacuum evaporation (TVE). The XRD thin films that were prepared by TVE showed high crystallinity of cubic and hexagonal structures with high homogeneity. Using TVE, the InxGa1-xN phase separation of 0.1 <= x <= 0.9 was eliminated and highly detected by XRD and FESEM. Also, the Raman spectroscopy confirmed the structure that was detected by XRD. The FESEM showed a variance in the grain size of both alloys and thin films. The InxGa1-xN LED device with the structure of glass/GaN/n-In0.1Ga0.9N:n/In0.1Ga0.9N/p-In0.1Ga0.9N:Mg was checked by the light emitted by electroluminescence (EL). White light generation is a promising new direction for the fabrication of such devices based on InxGa1-xN LED devices with simple and low-cost techniques.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Bowing of the band gap pressure coefficient in InxGa1-xN alloys
    Franssen, G.
    Gorczyca, I.
    Suski, T.
    Kaminska, A.
    Pereiro, J.
    Munoz, E.
    Iliopoulos, E.
    Georgakilas, A.
    Che, S. B.
    Ishitani, Y.
    Yoshikawa, A.
    Christensen, N. E.
    Svane, A.
    JOURNAL OF APPLIED PHYSICS, 2008, 103 (03)
  • [32] Preparation of Mg-doped InxGa1-xN Thin Films by Magnetron Sputtering and Their Characterization
    Wang Xuewen
    Wu Zhaoke
    Gao Haibo
    Zhai Chunxue
    Li Zhenjie
    Zhang Zhiyong
    He Lin
    RARE METAL MATERIALS AND ENGINEERING, 2019, 48 (04) : 1074 - 1078
  • [33] Systematic theoretical investigations InxGa1-xN thin films of compositional inhomogeneity in on GaN(0001)
    Ito, Tomonori
    Inahama, Shingo
    Akiyama, Toru
    Nakamura, Kohji
    JOURNAL OF CRYSTAL GROWTH, 2007, 298 : 186 - 189
  • [34] Preparation of Mg-doped InxGa1-xN Thin Films by Magnetron Sputtering and Their Characterization
    Wang, Xuewen
    Wu, Zhaoke
    Gao, Haibo
    Zhai, Chunxue
    Li, Zhenjie
    Zhang, Zhiyong
    He, Lin
    Xiyou Jinshu Cailiao Yu Gongcheng/Rare Metal Materials and Engineering, 2019, 48 (04): : 1074 - 1078
  • [35] Infrared optical responses of wurtzite InxGa1-xN thin films with porous surface morphology
    Yew, P.
    Lee, S. C.
    Ng, S. S.
    Abu Hassan, H.
    Chen, W. L.
    Osipowicz, T.
    Ren, M. Q.
    THIN SOLID FILMS, 2016, 603 : 334 - 341
  • [36] Photoconductivity in InxGa1-xN epilayers
    Zheng, Xiantong
    Guo, Lei
    Liang, Hongwei
    Wang, Ping
    Wang, Shibo
    Wang, Tao
    Rong, Xin
    Sheng, Bowen
    Yang, Xueling
    Xu, Fujun
    Qin, Zhixin
    Shen, Bo
    Wang, Xinqiang
    OPTICAL MATERIALS EXPRESS, 2016, 6 (03): : 815 - 822
  • [37] Electron transport in Ga-rich InxGa1-xN alloys
    Yildiz, A.
    Lisesivdin, S. B.
    Acar, S.
    Kasap, M.
    Bosi, M.
    CHINESE PHYSICS LETTERS, 2007, 24 (10) : 2930 - 2933
  • [38] Influence of the dipole interaction energy on clustering in InxGa1-xN alloys
    Miller, EJ
    Yu, ET
    APPLIED PHYSICS LETTERS, 2001, 78 (16) : 2303 - 2305
  • [39] A quantitative procedure to probe for compositional inhomogeneities in InxGa1-xN alloys
    Bartel, T. P.
    Kisielowski, C.
    ULTRAMICROSCOPY, 2008, 108 (11) : 1420 - 1426
  • [40] Molecular simulation study of miscibility in InxGa1-xN ternary alloys
    Adhikari, J
    Kofke, DA
    JOURNAL OF APPLIED PHYSICS, 2004, 95 (08) : 4500 - 4502