Bio-oil is a new liquid fuel produced by fast pyrolysis,which is a promising technology to convert bio-mass into liquid. Pyrolytic lignin extracted from bio-oil,a fine powder,contributes to the instability of bio-oil....Bio-oil is a new liquid fuel produced by fast pyrolysis,which is a promising technology to convert bio-mass into liquid. Pyrolytic lignin extracted from bio-oil,a fine powder,contributes to the instability of bio-oil. The paper presents the structural features of three kinds of pyrolytic lignin extracted from bio-oil with different methods(WIF,HMM,and LMM) . The pyrolytic lignin samples are characterized by Fourier transform infrared spectrometer(FTIR) and X-ray photoelectron spectroscopy(XPS) . FTIR data indicate that the three pyrolytic lignin samples have similar functional groups,while the absorption intensity is different,and show characteristic vibra-tions of typical lignocellulosic material groups O H(3340-3380 cm-1) ,C H(2912-2929 cm-1) and C O(1652-1725 cm-1) . Comparison in the region(3340-3380 cm-1) indicates that WIF has more O H stretch groups than HMM and LMM. The carbon spectra are fitted to four peaks:C1,C C or C H,BE 283.5 eV;C2,C OR or C OH,BE 284.5-285.8 eV;C3,C O or HO C OR,BE 286.10-287.10 eV;C4,O C O,BE 287.5-287.7 eV. The absence of C1,C C or C H indicates the dominant polymerization structure of aro-matic carbon in pyrolytic lignin samples. For HMM and WIF,C2a and C2b can not be separated,so there is no free hydroxyl group in the samples. The oxygen peaks are also fitted to four peaks:O1,OH,BE = 530.3 eV;O2,RC O,BE 531.45-531.72 eV;O3,O C O,BE = 532.73-533.74 eV;O4,H2O,BE 535 eV. The absence of O1 and O4 indicates that little hydroxyl groups and adsorbed water are present in the samples.展开更多
Fast pyrolysis is a promising technology that can convert biomass into liquid.Bio-oil is one such product,known not only as a greenhouse gas-neutral energy source,but also an opportunity to reduce reliance on fossil f...Fast pyrolysis is a promising technology that can convert biomass into liquid.Bio-oil is one such product,known not only as a greenhouse gas-neutral energy source,but also an opportunity to reduce reliance on fossil fuels.Pyrolytic lignin,a fine homogeneous powder,is the water-insoluble fraction of bio-oil and it contributes to the instability of bio-oil.Additionally,pyrolytic lignin can be used in commercial materials such as adhesives in the wood-based panel industry.This paper presents the structural characterization of pyrolytic lignin extracted from aged bio-oil and the relationship between its properties and the treatment temperature of the aged bio-oil.Pyrolytic lignin samples were characterized by Fourier transform infrared spectroscopy,gel permeation chromatography,differential scanning calorimetry,thermogravimetric analysis and proton nuclear magnetic resonance spectroscopy.The average molecular weight of pyrolytic lignin increased from 700 to 1000 g/mol with increasing aging temperature (6-50°C).Differential scanning calorimetry showed that the glass transition temperature of pyrolytic lignin increases with lower heating rate and higher treatment temperature of bio-oil.An increase in the initial decomposition temperature and the temperature at 95 wt% weight loss of the aged pyrolytic lignin in thermogravimetry were observed for the bio-oil aged at higher temperature.An increase in residue weight of aged pyrolytic lignin was found in bio-oil aged at higher temperatures.展开更多
基金Supported by State Key Development Program for Basic Research of China(2007CB210208)National Science and Technology Major Project of China(2008ZX07101)China Scholarship Council(CSC),Natural Science and Engineering Research Council of Canada(NSERC),BIOCAP,and Canadian Funding for Innovations(CFI)
文摘Bio-oil is a new liquid fuel produced by fast pyrolysis,which is a promising technology to convert bio-mass into liquid. Pyrolytic lignin extracted from bio-oil,a fine powder,contributes to the instability of bio-oil. The paper presents the structural features of three kinds of pyrolytic lignin extracted from bio-oil with different methods(WIF,HMM,and LMM) . The pyrolytic lignin samples are characterized by Fourier transform infrared spectrometer(FTIR) and X-ray photoelectron spectroscopy(XPS) . FTIR data indicate that the three pyrolytic lignin samples have similar functional groups,while the absorption intensity is different,and show characteristic vibra-tions of typical lignocellulosic material groups O H(3340-3380 cm-1) ,C H(2912-2929 cm-1) and C O(1652-1725 cm-1) . Comparison in the region(3340-3380 cm-1) indicates that WIF has more O H stretch groups than HMM and LMM. The carbon spectra are fitted to four peaks:C1,C C or C H,BE 283.5 eV;C2,C OR or C OH,BE 284.5-285.8 eV;C3,C O or HO C OR,BE 286.10-287.10 eV;C4,O C O,BE 287.5-287.7 eV. The absence of C1,C C or C H indicates the dominant polymerization structure of aro-matic carbon in pyrolytic lignin samples. For HMM and WIF,C2a and C2b can not be separated,so there is no free hydroxyl group in the samples. The oxygen peaks are also fitted to four peaks:O1,OH,BE = 530.3 eV;O2,RC O,BE 531.45-531.72 eV;O3,O C O,BE = 532.73-533.74 eV;O4,H2O,BE 535 eV. The absence of O1 and O4 indicates that little hydroxyl groups and adsorbed water are present in the samples.
基金supported by the National Basic Research Program of China (2007CB210208)the National S&T Major Project of China (2008ZX07101)the China Scholarship Council (CSC),NSERC (the Natural Science and Engineering Research Council of Canada),BIOCAP and CFI (Canadian Funding for Innovations)
文摘Fast pyrolysis is a promising technology that can convert biomass into liquid.Bio-oil is one such product,known not only as a greenhouse gas-neutral energy source,but also an opportunity to reduce reliance on fossil fuels.Pyrolytic lignin,a fine homogeneous powder,is the water-insoluble fraction of bio-oil and it contributes to the instability of bio-oil.Additionally,pyrolytic lignin can be used in commercial materials such as adhesives in the wood-based panel industry.This paper presents the structural characterization of pyrolytic lignin extracted from aged bio-oil and the relationship between its properties and the treatment temperature of the aged bio-oil.Pyrolytic lignin samples were characterized by Fourier transform infrared spectroscopy,gel permeation chromatography,differential scanning calorimetry,thermogravimetric analysis and proton nuclear magnetic resonance spectroscopy.The average molecular weight of pyrolytic lignin increased from 700 to 1000 g/mol with increasing aging temperature (6-50°C).Differential scanning calorimetry showed that the glass transition temperature of pyrolytic lignin increases with lower heating rate and higher treatment temperature of bio-oil.An increase in the initial decomposition temperature and the temperature at 95 wt% weight loss of the aged pyrolytic lignin in thermogravimetry were observed for the bio-oil aged at higher temperature.An increase in residue weight of aged pyrolytic lignin was found in bio-oil aged at higher temperatures.