Synthesis and optimum temperature determination of highly sensitive MoO3-based heterojunction Schottky sensor for hydrogen detection

被引:15
作者
Farzi-kahkesh, Shaghayegh [1 ]
Fattah, Ali [1 ]
Rahmani, Mohammad Bagher [2 ]
机构
[1] Shahrood Univ Technol, Fac Elect Engn & Robot, Shahrood, Iran
[2] Shahrood Univ Technol, Fac Phys, Shahrood, Iran
关键词
Optimum; MoO3; Schottky; Heterojunction; Hydrogen detection; GAS-SENSING PROPERTIES; ROOM-TEMPERATURE; THIN-FILMS; MOO3; PERFORMANCE;
D O I
10.1016/j.mee.2020.111453
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this investigation, thin films of molybdenum trioxide (MoO3) were deposited on a silicon substrate using the physical vapor deposition method to fabricate a Pt/MoO3/Si heterojunction Schottky diode. To study the morphological characteristics, chemical composition and crystalline phases present in the synthesized thin films, FESEM, Raman spectroscopy, and XRD pattern analysis were performed, respectively. The XRD pattern proves the formation of an alpha-MoO3 phase structure. Raman spectra indicate that deposited films are orthorhombic and FESEM image of the sample demonstrates the uniformly growth of thin films. The platinum and gold metals were used as the electrodes to form Schottky and ohmic contacts of the gas sensor, respectively. The fabricated sample was exposed to 0.05% up to 0.25% concentrations of Hydrogen gas at 170 to 300 degrees C. It is observed that the highest sensitivity of the sensor occurs at 260 degrees C. The response values at an optimum temperature of 260 degrees C were about 18% for 0.05% and 58% for 0.25% of the target gas, while the sample exhibits response and recovery times of 29 and 158 s toward 0.25% of hydrogen gas, respectively. Moreover, the Schottky barrier height of the fabricated heterojunction diode is estimated to be 0.32 eV, which confirms its rectifying behavior.
引用
收藏
页数:7
相关论文
共 28 条
[1]   Two dimensional α-MoO3 nanoflakes obtained using solvent-assisted grinding and sonication method: Application for H2 gas sensing [J].
Alsaif, Manal M. Y. A. ;
Balendhran, Sivacarendran ;
Field, Matthew R. ;
Latham, Kay ;
Wlodarski, Wojtek ;
Ou, Jian Zhen ;
Kalantar-zadeh, Kourosh .
SENSORS AND ACTUATORS B-CHEMICAL, 2014, 192 :196-204
[2]  
Ashraf S, 2006, J MATER CHEM, V16, P3575, DOI 10.1039/b607335h
[3]   Conduction model of metal oxide gas sensors [J].
Barsan, N ;
Weimar, U .
JOURNAL OF ELECTROCERAMICS, 2001, 7 (03) :143-167
[4]   Physical investigations on MoO3 sprayed thin film for selective sensitivity applications [J].
Boukhachem, A. ;
Bouzidi, C. ;
Boughalmi, R. ;
Ouerteni, R. ;
Kahlaoui, M. ;
Ouni, B. ;
Elhouichet, H. ;
Amlouk, M. .
CERAMICS INTERNATIONAL, 2014, 40 (08) :13427-13435
[5]   Morphology-Controlled Flame Synthesis of Single, Branched, and Flower-like α-MoO3 Nanobelt Arrays [J].
Cai, Lili ;
Rao, Pratap M. ;
Zheng, Xiaolin .
NANO LETTERS, 2011, 11 (02) :872-877
[6]  
Chen TD, 2016, IEEE C ELEC DEVICES, P464
[7]   RAMAN-SPECTRA OF HYDROGEN MOLYBDENUM BRONZE, H0.30MOO3 [J].
EDA, K .
JOURNAL OF SOLID STATE CHEMISTRY, 1992, 98 (02) :350-357
[8]  
Eranna G., 2016, METAL OXIDE NANOSTRU
[9]   Photochromism of molybdenum oxide [J].
He, T ;
Yao, JN .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY C-PHOTOCHEMISTRY REVIEWS, 2003, 4 (02) :125-143
[10]  
Hosseinpour R., 2017, IRAN J CRYSTALLOGR M, V25, P635