期刊文献+

TiO_2-SnO_2纳米晶膜紫外光照下对臭氧气敏性能的研究 被引量:7

Research on Gas-Sensing Properties of TiO_2-SnO_2 Composite Nanocrystalline to Ozone under Ultra-Violet Light
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摘要 以低温水热法制备了TiO2-SnO2复合纳米晶粒,采用提拉法涂敷于带有金电极的氧化铝陶瓷管表面形成敏感薄膜,设计了一种新型薄膜式臭氧传感器。采用 X 射线衍射仪、热场发射扫描电子显微镜、能量色散X 射线谱仪和紫外-可见光谱能谱仪,表征了TiO2-SnO2纳米晶粒的晶体结构和微观形貌。采用紫外-可见吸收光谱法和电化学方法,讨论了TiO2-SnO2纳米晶粒对臭氧敏感机理与光电化学特性。在气体传感器静态测试系统上,采用XEDWS-60A型气敏元件分析仪测试了紫外光下臭氧传感器敏感特性、动态响应、抗干扰和稳定性。结果表明,以Ti与Sn摩尔比为6的TiO2-SnO2纳米晶粒为敏感薄膜的臭氧传感器,在相对湿度为40%和温度为25℃条件下,臭氧浓度为0.1~1.8μg/L时,有、无紫外光照射的臭氧传感器线性度分别为97.5%和78.5%,动态响应分别为2和9 s,恢复时间分别为5.5和15 s。此传感器对CO、NOx、甲醛、丙酮、丁醇和甲醇等气体具有良好的抗干扰性能。在汽车上连续使用12个月后,响应衰减了4.7%,响应正常时间为8.5个月。 TiO2-SnO2 composite nanocrystalline was prepared by the low temperature hydrothermal method. A new film-type ozone sensor was developed by using TiO2-SnO2 composite nanocrystallines transferred onto an alumina ceramic tube with Au electrodes by dip-coating method. The crystalline phase and microstructure of TiO2-SnO2 nanocrystallines were characterized by X-ray diffraction ( XRD) , field emission scanning electron microscope ( FE-SEM) , energy dispersive X-ray analysis ( EDAX) and ultraviolet-visible spectrometry ( UV-Vis) . The ozone sensitive mechanism and photoelectrochemical properties of TiO2-SnO2 nanocrystallines were analyzed by using ultraviolet-visible spectrometry and electrochemical method. These characteristic tests of ozone sensor were carried out on the traits of sensitive performance, dynamic response, interference and stability under ultraviolet-visible illumination by the XEDWS-60 A type multifunction analyzer in gas sensor static test system. the conclusion demonstrates that when the ozone sensor based on TiO2-SnO2 composite nanocrystalline ( molar ratio of Ti and Sn is 6 ) was under conditions of 40% relative humidity and 25 ℃operating temperature, when ozone concentration was increased from 0. 1 to 1. 8 μg/L, the best linearity of ozone sensor upon ultraviolet illumination and visible illumination were 97 . 5% and 78 . 5%, the dynamic response time was 2 s and 9 s, the recovery time was 5. 5 s and 15 s. This kind of sensor showed good anti-disturbance to the gases, such as CO, NOx , formaldehyde, acetone, butanol and methanol. The response value of ozone sensor was attenuated about 4 . 7%, when ozone sensor was applied continually on the automobile about 12 months, and its normal time was 8. 5 months.
出处 《分析化学》 SCIE EI CAS CSCD 北大核心 2014年第7期948-954,共7页 Chinese Journal of Analytical Chemistry
基金 国家自然基金项目(Nos.50776042 51376083) 河南省科技厅重点攻关计划项目(No.112102210363)资助:~~
关键词 臭氧传感器 复合纳米晶粒 紫外光照 敏感薄膜 Ozone sensor Composite nanocrystalline Ultra-violet light Sensitive thin film
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参考文献15

  • 1Carotta M C, Cervi A, Fioravanti A, Gherardi S, Giberti A, Vendemiati B, Vincenzi D, Sacerdoti M. Thin. Solid Films, 2011, 520(3):939-946. 被引量:1
  • 2Wagner T, Hennemann J, Kohl C D,Tiemann M. Thin Solid Films, 2011, 520(3) : 918-921. 被引量:1
  • 3Brunet J, Spinelle L, Ndiaye A, Dubois M, Monier G, Varenne C, Pauly A, Lauron B, Guerin K, Hamwi A. Thin Solid Films, 2011, 520(3): 971-977. 被引量:1
  • 4Mastelaro V R, Zllio S C, Silva L F, Pelissari P I, Bernardi M B, Guerin J, Aguir K. Sensors and Actuators B, 2013, 181(1) : 918-924. 被引量:1
  • 5Bejaou A, Guerin J, Zapien J A, Aguir K. Sensors and Actuators. B, 2014, 190(1) : 8-15. 被引量:1
  • 6Mahdi D M, Shirin N, Hossein S M. Inter. J. Environ. Anal. Chem. , 2013, 93(9) : 946-958. 被引量:1
  • 7Sun J B, Xu J, Wang B, Sun P, Liu F M, Lu G Y. Chemical Research in Chinese Universities, 2012, 28 (3) : 483-487. 被引量:1
  • 8Le T, Tao S Q. Analyst, 2011, 136(16) : 3335-3342. 被引量:1
  • 9Mori M, Fujita J, Itagaki Y, Sadaoka Y. Journal of the Ceramic Society of Japan, 2011, 119 (1396) : 926-928. 被引量:1
  • 10Masami M, Yoshiteru I, Yoshihiko S. Sensors and Actuators B, 2012, 163 ( 1 ) : 44-50. 被引量:1

二级参考文献32

  • 1Edited by Kou S K. Water Treatment Technology by Using Ozone, 1989: 25~26 (in Japanese). 被引量:1
  • 2Machado E L, da Rosa M B, Flores E M M J, Paniz N G, Martins A F. Anal. Chim. Acta, 1999, 380(1): 93~99. 被引量:1
  • 3Atashbar M Z, Gong B, Sun H T, Wlodarski W, Lamb R. Thin Solid Films, 1999, 354(2): 222~226. 被引量:1
  • 4Fuchs A, Bogner M, Doll T, Eisele I. Sensors and Actuators B, 1998, 48: 296~299. 被引量:1
  • 5Abliz Y. Itoh K, Murabayashi M. Electrochemistry, 2001, 69(11): 863~865. 被引量:1
  • 6Abliz Y, Itoh K, Murabayashi M. Sensors and Actutors B, 2003, 88: 239~245. 被引量:1
  • 7Abliz Y, Huang X, Xu Y, Amemiya T, Itoh K. Chemistry Letters, 2003: 86~87. 被引量:1
  • 8Abliz Y, Itoh K, Murabayashi M. Electrochemistry, 2002, 70(10): 798~801. 被引量:1
  • 9Nishihara H, Haruna S, Suhara T. Optical Integrated Circuits, Ohm Publishing Co., Ltd., Japan, 1993: 9~17. 被引量:1
  • 10Ramaswamy R V, Sriwastava R. J. Lightwave Technol., 1988, 6(6): 984~1002. 被引量:1

共引文献28

同被引文献54

  • 1樊雪梅.浅谈热催化燃烧式甲烷传感器检测瓦斯的适用性[J].同煤科技,2009(3):19-20. 被引量:14
  • 2NI P, WANG Z, WANG X, et al. Regulated and unregulated emissions from a non-road small gasoline engine fueled with gasoline and metha- nol-gasoline blends.Energy Sources, Part A : Recovery, Utilization, and Environmental Effects, 2014,36 (14) : 1499-1506. 被引量:1
  • 3QI D H,JIA C C,FENG Y M.Combustion and emissions behaviour for methanol-gasoline blended fuels in a muhipoint electronic fuel injec- tion engine.International Journal of Sustainable Energy,2014,33 ( 5 ) : 985-999. 被引量:1
  • 4BABAEI M, ALIZADEH N. Methanol selective gas sensor based on nano-structured conducting polypyrrole prepared by electrochemically on interdigital electrodes for biodiesel analysis. Sensors and Actuators B : Chemical,2013,183(4) :617-626. 被引量:1
  • 5FAISAL M, KHAN S B, RAHMAN M M, et al.Fabrication of ZnO nan- oparticles based sensitive methanol sensor and efficient photocatalyst.Applied Surface Science,2012,258(4 ) :7515-7522. 被引量:1
  • 6MANIVANNAN S, SARANYA A M, RENGANATHAN B, et al.Single- walled carbon nanotubes wrapped poly-methyl methacrylate fiber optic sensor for ammonia, ethanol and methanol vapors at room temperature. Sensors and Actuators B : Chemical,2012,171 (5) : 634-638. 被引量:1
  • 7BANEPJEE N, ROY S, SARKAR C K, et al. High dynamic range methanol sensor based on aligned ZnO nanorods. IEEE SENSORS IOURNAL_ 2013.13 ( 5 ), 1669-1675. 被引量:1
  • 8GHOSH R, SINGH A, SANTRA S, ct al. Highly sensitive large-area muhi-layered graphene-based flexible ammonia sensor.Sensors and Ac- tuators B : Chemical, 2014,205 ( 8 ) : 67- 73. 被引量:1
  • 9LEE S K, CHANG D, WOOK S, et al. Gas sensors based on carbon nanoflake/tin oxide composites fi:r ammonia detection.Journal of Haz- ardous Materials ,2014,268( 1 ) : 110-114. 被引量:1
  • 10LI X D,CHDEN Y,ZHOU L H,et al:Mg2CuxFeO3.5+x Mixed Metal Oxides as Ammonia Sensitive Material of Ammonia Sensors.Key Engi- neering Materials, 2014,602 ( 3 ) : 851 - 857. 被引量:1

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