Deposition and photoluminescence of zinc gallium oxide thin films with varied stoichiometry made by reactive magnetron co-sputtering

被引:3
作者
Zubkins, Martins [1 ]
Strods, Edvards [1 ]
Vibornijs, Viktors [1 ]
Sarakovskis, Anatolijs [1 ]
Nedzinskas, Ramunas [1 ]
Ignatans, Reinis [1 ]
Butanovs, Edgars [1 ]
Purans, Juris [1 ]
Azens, Andris [2 ]
机构
[1] Univ Latvia, Inst Solid State Phys, Kengaraga 8, LV-1063 Riga, Latvia
[2] AGL Technol SIA, Smerla 3, LV-1006 Riga, Latvia
关键词
Zinc gallium oxide (ZnGa 2 O 4 ); Thin films; Reactive magnetron co-sputtering; Liquid metal target; Photoluminescence; EPITAXIAL-GROWTH; ZNGA2O4; FILMS; LUMINESCENCE;
D O I
10.1016/j.jallcom.2023.173218
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This paper reports on the deposition and photoluminescence of amorphous and crystalline thin films of zinc gallium oxide with Ga:Zn atomic ratio varied between 0.3 and 5.7. The films are prepared by reactive direct current magnetron co-sputtering from liquid/solid gallium/zinc targets onto fused quartz substrates; the temperature of the substrate is varied from room temperature (RT) to 800 degrees C. The sputtering process is effectively controlled by fixing the sputtering power of one of the targets and controlling the power of the other target by plasma optical emission spectroscopy. The method, in conjunction with oxygen flow adjustment, enables the production of near-stoichiometric films at any temperature used. The composition analysis suggests a few at% oxygen deficiency in the films. The resulting deposition rate is at least an order of magnitude higher compared to the commonly used radio-frequency sputtering from a ceramic ZnO:Ga2O3 target. Deposited onto unheated substrates, the films with Ga:Zn approximate to 2 are X-ray amorphous. Well-defined X-ray diffraction peaks of spinel ZnGa2O4 start to appear at a substrate temperature of 300 degrees C. The surface of the as-deposited films is dense and exhibits a fine-featured structure observed in electron microscopy images. Increasing the deposition temperature from RT to 800 degrees C eliminates defects and improves crystallinity, which for the films with Ga:Zn ratio close to 2 results in an increase in the optical band gap from 4.6 eV to 5.1 eV. Room temperature photoluminescence established the main peak at 3.1 eV (400 nm); a similar peak in Ga2O3 is ascribed to oxygen-vacancy related transitions. A prominent feature around 2.9 eV (428 nm) is attributed to self-activation center of the octahedral Ga-O groups in the spinel lattice of ZnGa2O4. It was found that photoluminescence from ZnGa2O4 depends significantly on the stoichiometric ratio between Ga and Zn and the deposition/annealing temperature.
引用
收藏
页数:10
相关论文
共 57 条
[1]   Efficient optical activation of Eu3+ ions doped in ZnGa2O4 thin films: Correlation between crystalline phase and photoluminescence [J].
Akazawa, Housei ;
Shinojima, Hiroyuki .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2018, 117 :60-69
[2]   A structure zone diagram including plasma-based deposition and ion etching [J].
Anders, Andre .
THIN SOLID FILMS, 2010, 518 (15) :4087-4090
[3]   Zinc gallate (ZnGa2O4) epitaxial thin films: determination of optical properties and bandgap estimation using spectroscopic ellipsometry [J].
Bairagi, Samiran ;
Hsiao, Ching-Lien ;
Magnusson, Roger ;
Birch, Jens ;
Chu, Jinn P. ;
Tarntair, Fu-Gow ;
Horng, Ray-Hua ;
Jarrendahl, Kenneth .
OPTICAL MATERIALS EXPRESS, 2022, 12 (08) :3284-3295
[4]   Origin of the blue luminescence of β-Ga2O3 [J].
Binet, L ;
Gourier, D .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 1998, 59 (08) :1241-1249
[5]   A comprehensive study of structure and properties of nanocrystalline zinc peroxide [J].
Bocharov, Dmitry ;
Chesnokov, Andrei ;
Chikvaidze, George ;
Gabrusenoks, Jevgenijs ;
Ignatans, Reinis ;
Kalendarev, Robert ;
Krack, Matthias ;
Kundzins, Karlis ;
Kuzmin, Alexei ;
Mironova-Ulmane, Nina ;
Pudza, Inga ;
Puust, Laurits ;
Sildos, Ilmo ;
Vasil'chenko, Evgeni ;
Zubkins, Martins ;
Purans, Juris .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2022, 160
[6]   Comparison of two methods for one-dimensional Ga2O3-ZnGa2O4 core-shell heterostructure synthesis [J].
Butanovs, Edgars ;
Zubkins, Martins ;
Nedzinskas, Ramunas ;
Zadin, Veronika ;
Polyakov, Boris .
JOURNAL OF CRYSTAL GROWTH, 2023, 618
[7]   Zinc Gallium Oxide-A Review from Synthesis to Applications [J].
Chen, Mu-, I ;
Singh, Anoop Kumar ;
Chiang, Jung-Lung ;
Horng, Ray-Hua ;
Wuu, Dong-Sing .
NANOMATERIALS, 2020, 10 (11) :1-37
[8]   Quasi-Single-Crystalline ZnGa2O4 Films via Solid Phase Epitaxy for Enhancing Deep-Ultraviolet Photoresponse [J].
Chen, Po-Wei ;
Huang, Shiau-Yuan ;
Yuan, Shuo-Huang ;
Chen, Yi-An ;
Hsiao, Po-Wen ;
Wuu, Dong-Sing .
ADVANCED MATERIALS INTERFACES, 2019, 6 (18)
[9]   Bipolar self-doping in ultra-wide bandgap spinel ZnGa2O4 [J].
Chi, Z. ;
Tarntair, Fu-Gow ;
Fregnaux, M. ;
Wu, Wan-Yu ;
Sartel, C. ;
Madaci, I. ;
Chapon, P. ;
Sallet, V. ;
Dumont, Y. ;
Perez-Tomas, A. ;
Horng, R. H. ;
Chikoidze, E. .
MATERIALS TODAY PHYSICS, 2021, 20
[10]   Assessment of large critical electric field in ultra-wide bandgap p-type spinel ZnGa2O4 [J].
Chi, Zeyu ;
Tchelidze, Tamar ;
Sartel, Corinne ;
Gamsakhurdashvili, Tsotne ;
Madaci, Ismail ;
Yamano, Hayate ;
Sallet, Vincent ;
Dumont, Yves ;
Perez-Tomas, Amador ;
Medjdoub, Farid ;
Chikoidze, Ekaterine .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2023, 56 (10)