Citation: WANG Jiaming, GULMIRA·Turdi, YAN Yin, PAYZULLA·Ibirayimhaji, ABLIZ Yimit. Gas-sensing Properties to Ethylenediamine Based on Tetraphenylporphyrin Iron Sensitive Film Optical Waveguide Sensor[J]. Chinese Journal of Applied Chemistry, ;2017, 34(7): 847-854. doi: 10.11944/j.issn.1000-0518.2017.07.160414 shu

Gas-sensing Properties to Ethylenediamine Based on Tetraphenylporphyrin Iron Sensitive Film Optical Waveguide Sensor

  • Corresponding author: ABLIZ Yimit, ablizyimit@xju.edu.cn
  • Received Date: 14 October 2016
    Revised Date: 28 December 2016
    Accepted Date: 19 January 2017

    Fund Project: the National Natural Science Foundation of China 21265020

Figures(9)

  • To detect ethylenediamine gas produced by the degradation of flavor during food deterioration process, tetraphenylporphyrin iron was synthesized via Alder method and its thin film/K+ exchanged glass waveguide sensor were prepared by spin coating. This sensor exhibits selective and high sensitive response to ethylenediamine. In the volume ratio range of 1×10-10~1×10-4(V/V0), there is a good linear relationship between the volume ratio and output light intensity(R=0.9940). The response time and recovery time are 3 s and 11 s, respectively. The signal to noise ratio(S/N) is 4.8, RSD=0.5%(V/V0=1×10-7). Good linear relationship between the volume ratio and output light intensity(R=0.9985) in parallel experiments also proves the accuracy of this sensor toward ethylenediamine gas detection. This sensor has potential application in the field of food quality examination.
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    1. [1]

      XU Yanping, GU Zhengxian, CHEN Jiabi. Recent Developments of Optical Chemical Sensors[J]. Opt Instrum, 2004,26(4):57-61.  

    2. [2]

      SUN Jian, WANG Shujun, YAN Shiqiang. Synthesis of Zinc Porphyrin and the Spectroscopic Properties of Interaction with Imidazole Derivatives[J]. J Mol Sci, 2015,31(1):82-88.  

    3. [3]

      ZHANG Jianbin, ZHANG Pengyan, CHEN Guohua. Bionic Interaction of Metalloporphyrins with Various Gaseous Molecule[J]. Chem Prog, 2009,21(4):771-776.  

    4. [4]

      Zahou I, Hassen L B H, Mlika R. Synthesis and Investigation on Optical and Electrical Properties of Atriflato Iron Porphyrin:Application as an Optical BPA Sensor[J]. Synth Met, 2016,15401:1-11.

    5. [5]

      Zhang B, Wang Y, Li M. Graphene-supported Poly[Iron(Ⅱ) Tetraphenylporphyrin] Hybrid Fabricated by a Solvothermally Assisted ∏ Assembly Method and Its Application for the Detection of Dopamine[J]. J Electroanal Chem, 2015,743:10-17. doi: 10.1016/j.jelechem.2015.02.011

    6. [6]

      Gutierrez A F, Brittle S, Richardson T H. A Proto-type Sensor for Volatile Organic Compounds Based on Magnesium Porphyrin Molecular Film[J]. Sens Actuators B Chem, 2014,202(10):854-860.

    7. [7]

      Tan K X, Lintang H O, Maniam S. Synthesis and Photophysical Studies of Fluorenone-armed Porphyrin Arrays[J]. Tetrahedron, 2016,72(35):5402-5413. doi: 10.1016/j.tet.2016.07.028

    8. [8]

      LU Li, LIU Hui, JU Xiulian. Progress on Synthesis of Porphyrins and Their Derivatives[J]. Chem Bioeng, 2015,32(4):15-20.  

    9. [9]

      Burman A U, Krister H U S. Vapor-Liquid Equilibrium for Mixtures of Ethylethylenediamine, Ethylenediamine, and Water[J]. J Chem Eng Data, 2013,58(2):257-263. doi: 10.1021/je300819g

    10. [10]

      LI Tao, HU Qingda, TANG Dongbao. Identification and Detection of Ethylenediamine by a Novel C6/SiO2/CdTe NPS Fluorescent Probe[J]. Chem Enterprise Manage, 2016,16:184-185. doi: 10.3969/j.issn.1008-4800.2016.13.110

    11. [11]

      Yoshihiko, Hajime, ShinT. Highly Sensitive Determination of a Polymeric Hindered Amine Light Stabilizer in Polypropylene by Reactive Thermal Desorption-Gas Chromatography Using Nitrogen-Specific Detection[J]. J Chromatogr A, 2003,993(1/2):137-142.  

    12. [12]

      Kim Y, Son S H, Lee T S. Detection of Ethylenediamine Using a Fluorescent Probe in Solution and in a PMMA Matrix[J]. Mol Cryst Liq Cryst, 2014,600(1):179-188. doi: 10.1080/15421406.2014.937292

    13. [13]

      Worsfold O, Dooling C M. Nitrogen Diocide Sensing Characteristics at Elevated Temperature of Sol-Gel Glass Thin Films Containing Substituted Porphyrin Dyes[J]. J Mater Chem, 2001,11(2):399-403. doi: 10.1039/b006344o

    14. [14]

      Paolesse R, Natale C D, Burgio M. Porphyrin-based Array of Cross-selective Electrodes for Analysis of Liquid Samples[J]. Sens Actuators B Chem, 2003,95(1/2/3):400-405.  

    15. [15]

      HOU Changjun, LIU Yuchan, HUANG Shun. Research Progress of Biomolecular Recognition Based on Porphyrins and Porphyrin Derivatives[J]. Chinese J Appl Chem, 2011,28(9):977-985.  

    16. [16]

      Hayrensa A, Abliz Y, Mamtimin M. Nafion Film/K+-Exchanged Glass Optical Waveguide Sensor for BTX Detection[J]. Anal Chem, 2008,80(20):7678-7683. doi: 10.1021/ac800815g

    17. [17]

      Miriguli M, Abliz Y. Zinc Oxide Thin Film/Tin-Diffused Optical Waveguide Sensor for Chlorobenzene Gas Detection[J]. Chinese J Anal Chem, 2011,39(1):120-124.  

    18. [18]

      LIU Yang, CHEN Yang, QIU Jianghua. Study on the Preparation of Mimic Enzyme Type Complex-Tetraphenyl Porphyrin Iton(Ⅱ) and Catalytic Properties in Desufurization for Model Oil[J]. Ind Safety Environ, 2015,41(7):46-49.  

    19. [19]

      TURDI Gulmira, TURSUN Arken, TURGUN Amangul. Zinc Tetraphenylporphyrin Film Optical Waveguide Sensor for Detection of Volatile Organic Compound Gases[J]. Chinese J Appl Chem, 2015,32(2):232-238. doi: 10.11944/j.issn.1000-0518.2015.02.140161 

    20. [20]

      MA, MUZAPAR Mamtimin, AMANGUL Turhun. Preparation of Nickel Oxide-Zinc Ferrite Composite Thin Film/Tin-diffused Glass Optical Waveguide Sensor and Its Gas-sensing for Hydrogen Sulfide[J]. Chinese J Appl Chem, 2014,31(3):354-360.  

    21. [21]

      Abdurahman R, Abliz Y, Ablat H. Optical Waveguide Sensor of Volatile Organic Compounds Based on PTA Thin Film[J]. Anal Chim Acta, 2010,658(1):63-67. doi: 10.1016/j.aca.2009.10.056

    22. [22]

      SUN Xuli, XU Shenhong, TANG Jianguo. Synthesis and Characterization of Tetraphenylporphyrin[J]. Sci Technol Vision, 2015,19:11-13. doi: 10.3969/j.issn.2095-2457.2015.03.004

    23. [23]

      CHEN Lianqing, QU Xingyu, LI Qunli. Synthesis, Characterization, Photophysical and Electrochemical Properties of Tetraphenyl Porphyrin Derivatives[J]. J South-Central Univ Nat, 2009,28(2):18-22.  

    24. [24]

      SUN Erjun, LIU Yang, SONG Zhe. Synthesis, Characterization and Properties of Porphyrin Compounds[J]. J Changchun Normal Univ, 2013,32(2):118-121.  

    25. [25]

      Chlistunoff J, Sansiñena J M. Effects of Axial Coordination of the Metal Center on the Activity of Iron Tetraphenylporphyrin as a Nonprecious Catalyst for Oxygen Reduction[J]. J Phys Chem C, 2014,118(33):19139-19149. doi: 10.1021/jp5044249

    26. [26]

      HOU Changjun, LIU Cheng, ZHANG Liang. Preparation and Sensing Properties of Porphyrin Nanoparticles[J]. Fine Chem, 2011,28(4):337-341.  

    27. [27]

      Gong X C, Milic T, Xu C. Preparation and Characterization of Porphyrin Nanoparticles[J]. J Am Chem Soc, 2002,124(48):14290-14291. doi: 10.1021/ja027405z

    28. [28]

      Patima N, Abliz Y, Wang J D. Optical properties and Sensing Applications of Lithium Iron Phosphate Thin Films[J]. Thin Solid Films, 2012,520(19):6250-6255. doi: 10.1016/j.tsf.2012.05.024

    29. [29]

      ZHANG Ying, XU Xue, XU Gang. The Influences of Organic Ligands on the Microstructure and Optical Properties of Tin Doped Indium Oxide Thin Films[C]//Proceeding of Tenth China Solar Photovoltaic Conference. Guangzhou: Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, 2008:744-748(in Chinese).

    30. [30]

      CHEN Hongwei, ZHU Zhiang, RUAN Wenjuan. Thermodynamic Study of Coordination Reactions of Parasubstituted Tetraphenyporphyrins with Metallic Schiff Base Compiexes[J]. Acta Chim Sin, 1997,55(4):380-385.  

    31. [31]

      ZHU Zhiang, HUANG Xiaoqun, JIANG Dongqing. Study on Axial Coordination of Meta-substituted (Tetraphenyl-Porphinato Iron(Ⅲ) Chloride and Their UV-vis Spectra[J]. Chinese J Inorg Chem, 1993,9(2):139-144.  

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