Application of Semiconductor Metal Oxide in Chemiresistive Methane Gas Sensor: Recent Developments and Future Perspectives

被引:22
作者
Fu, Li [1 ,2 ]
You, Shixi [2 ]
Li, Guangjun [2 ]
Li, Xingxing [1 ]
Fan, Zengchang [2 ]
机构
[1] Hangzhou Dianzi Univ, Coll Mat & Environm Engn, Key Lab Novel Mat Sensor Zhejiang Prov, Hangzhou 310018, Peoples R China
[2] Siterwell Elect Co Ltd, Res & Dev Ctr, Ningbo 315000, Peoples R China
来源
MOLECULES | 2023年 / 28卷 / 18期
关键词
semiconductor metal oxide; chemiresistive methane gas sensor; sensitivity; selectivity; sensor fabrication; material science; machine learning; green manufacturing; THIN-FILM; SENSING PROPERTIES; CONTROLLED SENSITIVITY; ROOM-TEMPERATURE; PT/SNO2; SENSOR; TIN DIOXIDE; GRAIN-SIZE; CO; ADSORPTION; ETHANOL;
D O I
10.3390/molecules28186710
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The application of semiconductor metal oxides in chemiresistive methane gas sensors has seen significant progress in recent years, driven by their promising sensitivity, miniaturization potential, and cost-effectiveness. This paper presents a comprehensive review of recent developments and future perspectives in this field. The main findings highlight the advancements in material science, sensor fabrication techniques, and integration methods that have led to enhanced methane-sensing capabilities. Notably, the incorporation of noble metal dopants, nanostructuring, and hybrid materials has significantly improved sensitivity and selectivity. Furthermore, innovative sensor fabrication techniques, such as thin-film deposition and screen printing, have enabled cost-effective and scalable production. The challenges and limitations facing metal oxide-based methane sensors were identified, including issues with sensitivity, selectivity, operating temperature, long-term stability, and response times. To address these challenges, advanced material science techniques were explored, leading to novel metal oxide materials with unique properties. Design improvements, such as integrated heating elements for precise temperature control, were investigated to enhance sensor stability. Additionally, data processing algorithms and machine learning methods were employed to improve selectivity and mitigate baseline drift. The recent developments in semiconductor metal oxide-based chemiresistive methane gas sensors show promising potential for practical applications. The improvements in sensitivity, selectivity, and stability achieved through material innovations and design modifications pave the way for real-world deployment. The integration of machine learning and data processing techniques further enhances the reliability and accuracy of methane detection. However, challenges remain, and future research should focus on overcoming the limitations to fully unlock the capabilities of these sensors. Green manufacturing practices should also be explored to align with increasing environmental consciousness. Overall, the advances in this field open up new opportunities for efficient methane monitoring, leak prevention, and environmental protection.
引用
收藏
页数:25
相关论文
共 128 条
  • [11] A chemiresistive methane sensor
    Bezdek, Mate J.
    Luo, Shao-Xiong Lennon
    Ku, Kang Hee
    Swager, Timothy M.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2021, 118 (02)
  • [12] Fast response methane sensor using nanocrystalline zinc oxide thin films derived by sol-gel method
    Bhattacharyya, P.
    Basu, P. K.
    Saha, H.
    Basu, S.
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2007, 124 (01) : 62 - 67
  • [13] Use of metal oxide semiconductor sensors to measure methane in aquatic ecosystems in the presence of cross-interfering compounds
    Butturini, Andrea
    Fonollosa, Jordi
    [J]. LIMNOLOGY AND OCEANOGRAPHY-METHODS, 2022, 20 (11): : 710 - 720
  • [14] Complex plane impedance plot as a figure of merit for tin dioxide-based methane sensors
    Chakraborty, S.
    Sen, A.
    Maiti, H. S.
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2006, 119 (02) : 431 - 434
  • [15] Selective detection of methane and butane by temperature modulation in iron doped tin oxide sensors
    Chakraborty, S.
    Sen, A.
    Maiti, H. S.
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2006, 115 (02): : 610 - 613
  • [16] Methane gas-sensing and catalytic oxidation activity of SnO2-In2O3 nanocomposites incorporating TiO2
    Chen Aifan
    Bai Shouli
    Shi Bingjie
    Liu Zhiyong
    Li Dianqing
    Chung Chiun Liu
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2008, 135 (01) : 7 - 12
  • [17] Chemiresistive gas sensors based on electrospun semiconductor metal oxides: A review
    Chen, Long
    Yu, Qiwen
    Pan, Chenying
    Song, Yanhua
    Dong, Hao
    Xie, Xiaoya
    Li, Yi
    Liu, Jun
    Wang, Di
    Chen, Xing
    [J]. TALANTA, 2022, 246
  • [18] Highly Dispersive Palladium Loading on ZnO by Galvanic Replacements with Improved Methane Sensing Performance
    Chen, Renjie
    Luo, Shirui
    Xie, Dan
    Yu, Yangxin
    Xiang, Lan
    [J]. CHEMOSENSORS, 2022, 10 (08)
  • [19] Cobalt- and Copper-Based Chemiresistors for Low Concentration Methane Detection, a Comparison Study
    Chesler, Paul
    Hornoiu, Cristian
    Anastasescu, Mihai
    Calderon-Moreno, Jose Maria
    Gheorghe, Marin
    Gartner, Mariuca
    [J]. GELS, 2022, 8 (11)
  • [20] Improving methane gas sensing properties of multi-walled carbon nanotubes by vanadium oxide filling
    Chimowa, George
    Tshabalala, Zamaswazi P.
    Akande, Amos A.
    Bepete, George
    Mwakikunga, Bonex
    Ray, Suprakas S.
    Benecha, Evans M.
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2017, 247 : 11 - 18