研究目的
To develop novel amphiphilic Zn(II)phthalocyanines for selective detection of trinitrophenol (TNP) in aqueous medium at the near-infrared region and explore their dual functionality as chemosensors and heterogeneous photocatalysts.
研究成果
ZnPc1 and ZnPc2 exhibit high selectivity and sensitivity for TNP detection in aqueous and vapor phases, with LODs of 0.7–1.1 ppm and quenching constants up to 2.02 × 10^5. The quenching mechanism involves photoinduced electron transfer, π-π interactions, and electrostatic forces. ZnPc2 shows superior performance due to its structure and morphology. Additionally, ZnPcs act as heterogeneous photocatalysts for TNP reduction, demonstrating dual functionality for sensing and catalytic applications.
研究不足
Aggregation of ZnPc2 reduces singlet oxygen generation; photocatalytic conversion of TNP is only 30% after 24 h; sensitivity variations due to morphology in solid state; requires optimization of catalyst dose and reaction conditions for improved kinetics.
1:Experimental Design and Method Selection:
Synthesis of ZnPc1 and ZnPc2 via cyclotetramerization of phthalonitriles; investigation of photophysical and photochemical properties; chemosensing studies with nitroaromatic compounds (NACs) in aqueous and vapor phases; photocatalytic reduction of TNP.
2:Sample Selection and Data Sources:
Phthalonitrile precursors synthesized from halogenated phthalonitriles and DMAP; nitro analytes (NB, NT, NP, DNT, DNP, TNT, TNP, NM) used as quenchers; water, DMSO, PBS as solvents; drinking and river water for real-time analysis.
3:List of Experimental Equipment and Materials:
NMR spectrometer (Bruker), MALDI-Micromass Q-TOF2, UV–vis spectrophotometer (Cary 5000), spectrofluorometer (Jobin-Yvon FluoroMax 3), TCSPC setup, cyclic voltammeter, spin-coater, confocal microscope (LSM 710 Carl Zeiss), chemicals from Sigma-Aldrich.
4:Experimental Procedures and Operational Workflow:
Synthesis under N2 atmosphere; characterization by NMR, MS, FT-IR; absorption and emission spectroscopy; fluorescence titration with NACs; vapor-phase sensing with thin films; photocatalytic reduction with NaBH4 and light irradiation.
5:Data Analysis Methods:
Stern-Volmer equation for quenching constants; LOD calculation using 3.3 × σ/m; DFT calculations for electronic structures; statistical analysis of quenching efficiencies.
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NMR spectrometer
300.13 and 75.47 MHz
Bruker
Recording 1H and 13C NMR spectra for structural confirmation of compounds.
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UV–vis spectrophotometer
Cary 5000
Cary
Recording UV–vis spectra for absorption studies.
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Confocal microscope
LSM 710
Carl Zeiss
Obtaining confocal fluorescence microscopy images of thin films.
ZEISS LSM 990 Spectral Multiplex
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MALDI-Micromass Q-TOF2
Q-TOF2
Micromass
Confirming the mass of compounds through mass spectrometry.
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Spectrofluorometer
FluoroMax 3
Jobin-Yvon
Conducting steady-state fluorescence emission studies.
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Time-correlated single-photon counting setup
TCSPC
Measuring fluorescence lifetimes.
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Cyclic voltammeter
Investigating electrochemical properties of ZnPcs.
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Spin-coater
Preparing thin films of ZnPcs on quartz substrates.
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