Innovations in WO3 gas sensors: Nanostructure engineering, functionalization, and future perspectives

被引:20
作者
Li, Xingxing [1 ]
Fu, Li [1 ]
Karimi-Maleh, Hassan [2 ,3 ]
Chen, Fei [1 ]
Zhao, Shichao [1 ]
机构
[1] Hangzhou Dianzi Univ, Coll Mat & Environm Engn, Key Lab Novel Mat Sensor Zhejiang Prov, Hangzhou 310018, Peoples R China
[2] Univ Elect Sci & Technol China, Sch Resources & Environm, Chengdu 611731, Peoples R China
[3] Lebanese Amer Univ, Sch Engn, Byblos, Lebanon
基金
英国科研创新办公室;
关键词
Tungsten oxide; Gas sensors; Nanostructuring; p -n heterojunctions; UV activation; Sensitivity and selectivity enhancement; NO2 SENSING PERFORMANCE; THIN-FILMS; LOW-TEMPERATURE; FACILE FABRICATION; HOLLOW SPHERES; MONOCLINIC WO3; CRYSTAL FACET; QUANTUM DOTS; POROUS WO3; ACETONE;
D O I
10.1016/j.heliyon.2024.e27740
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
This review critically examines the progress and challenges in the field of nanostructured tungsten oxide (WO3) gas sensors. It delves into the significant advancements achieved through nanostructuring and composite formation of WO3, which have markedly improved sensor sensitivity for gases like NO2, NH3, and VOCs, achieving detection limits in the ppb range. The review systematically explores various innovative approaches, such as doping WO3 with transition metals, creating heterojunctions with materials like CuO and graphene, and employing machine learning models to optimize sensor configurations. The challenges facing WO3 sensors are also thoroughly examined. Key issues include cross-sensitivity to different gases, particularly at higher temperatures, and long-term stability affected by factors like grain growth and volatility of dopants. The review assesses potential solutions to these challenges, including statistical analysis of sensor arrays, surface functionalization, and the use of novel nanostructures for enhanced performance and selectivity. In addition, the review discusses the impact of ambient humidity on sensor performance and the current strategies to mitigate it, such as composite materials with humidity shielding effects and surface functionalization with hydrophobic groups. The need for high operating temperatures, leading to higher power consumption, is also addressed, along with possible solutions like the use of advanced materials and new transduction principles to lower temperature requirements. The review concludes by highlighting the necessity for a multidisciplinary approach in future research. This approach should combine materials synthesis, device engineering, and data science to develop the next generation of WO3 sensors with enhanced sensitivity, ultrafast response rates, and improved portability. The integration of machine learning and IoT connectivity is posited as a key driver for new applications in areas like personal exposure monitoring, wearable diagnostics, and smart city networks, underlining WO3's potential as a robust gas sensing material in future technological advancements.
引用
收藏
页数:27
相关论文
共 50 条
  • [21] Ultraefficient Ammonia Gas Sensors Based on Pt-Loaded WO3 Nanobars
    Wiboon, Montawat
    Leangtanom, Pimpan
    Jaruwongrungsee, Kata
    Chanlek, Narong
    Wisitsoraat, Anurat
    Yordsri, Visittapong
    Kongpark, Patcharee
    Pookmanee, Pusit
    Kruefu, Viruntachar
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2024,
  • [22] Zeolite-modified WO3 gas sensors - Enhanced detection of NO2
    Varsani, Priya
    Afonja, Ayo
    Williams, David E.
    Parkin, Ivan P.
    Binions, Russell
    SENSORS AND ACTUATORS B-CHEMICAL, 2011, 160 (01) : 475 - 482
  • [23] Surface modification of WO3 nanoparticles with Pt and Ru for VOCs sensors
    Chen, Lei
    Zhang, Yu
    Sun, Bin
    He, Juan
    Kang, Shuai
    Hua, Zhong-Qiu
    Tian, Chen
    CHINESE JOURNAL OF ANALYTICAL CHEMISTRY, 2022, 50 (12)
  • [24] Highly sensitive and selective trimethylamine sensors based on WO3 nanorods decorated with Au nanoparticles
    Liu, Lu
    Song, Peng
    Yang, Zhongxi
    Wang, Qi
    PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2017, 90 : 109 - 115
  • [25] Platinum activated WO3 optical hydrogen sensors
    Coban, Omer
    Gur, Emre
    Tuzemen, Sebahattin
    MATERIALS TODAY-PROCEEDINGS, 2021, 46 : 6913 - 6915
  • [26] A Review on the Properties and Applications of WO3 Nanostructure-Based Optical and Electronic Devices
    Yao, Yu
    Sang, Dandan
    Zou, Liangrui
    Wang, Qinglin
    Liu, Cailong
    NANOMATERIALS, 2021, 11 (08)
  • [27] The oxidizing effect of humidity on WO3 based sensors
    Staerz, A.
    Berthold, C.
    Russ, T.
    Wicker, S.
    Weimar, U.
    Barsan, N.
    SENSORS AND ACTUATORS B-CHEMICAL, 2016, 237 : 54 - 58
  • [28] Effect of substrate on NO2-sensing properties of WO3 thin film gas sensors
    Lee, DS
    Nam, KH
    Lee, DD
    THIN SOLID FILMS, 2000, 375 (1-2) : 142 - 146
  • [29] The Effects of Growth Time on WO3 Nanostructure Synthesized by HFCVD Method
    Ghorannevis, Z.
    Jafari, A.
    Alipour, R.
    Ghoranneviss, M.
    JOURNAL OF FUSION ENERGY, 2015, 34 (05) : 1157 - 1161
  • [30] Efficient electrochemical reaction in hexagonal WO3 forests with a hierarchical nanostructure
    Shibuya, Masachika
    Miyauchi, Masahiro
    CHEMICAL PHYSICS LETTERS, 2009, 473 (1-3) : 126 - 130