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Efficient Conversion of Lignin to Aromatics via Catalytic Fast Pyrolysis over Niobium-Doped HZSM-5
by
Hu, Zhipeng
, Li, Zhen
, Zhang, Huihui
, Zhang, Zhijun
, Wang, Fengqiang
, Yang, Deshi
in
Acids
/ Adsorption
/ alkali lignin
/ Biomass
/ Catalysis
/ Catalytic cracking
/ catalytic fast pyrolysis
/ Crystallization
/ deoxygenation
/ Efficiency
/ Financial planners
/ Hydrocarbons
/ Lignin
/ Mass spectrometry
/ Metals
/ Nb-doped HZSM-5
/ Pore size
/ Pyrolysis
/ Zeolites
2023
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Efficient Conversion of Lignin to Aromatics via Catalytic Fast Pyrolysis over Niobium-Doped HZSM-5
by
Hu, Zhipeng
, Li, Zhen
, Zhang, Huihui
, Zhang, Zhijun
, Wang, Fengqiang
, Yang, Deshi
in
Acids
/ Adsorption
/ alkali lignin
/ Biomass
/ Catalysis
/ Catalytic cracking
/ catalytic fast pyrolysis
/ Crystallization
/ deoxygenation
/ Efficiency
/ Financial planners
/ Hydrocarbons
/ Lignin
/ Mass spectrometry
/ Metals
/ Nb-doped HZSM-5
/ Pore size
/ Pyrolysis
/ Zeolites
2023
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Efficient Conversion of Lignin to Aromatics via Catalytic Fast Pyrolysis over Niobium-Doped HZSM-5
by
Hu, Zhipeng
, Li, Zhen
, Zhang, Huihui
, Zhang, Zhijun
, Wang, Fengqiang
, Yang, Deshi
in
Acids
/ Adsorption
/ alkali lignin
/ Biomass
/ Catalysis
/ Catalytic cracking
/ catalytic fast pyrolysis
/ Crystallization
/ deoxygenation
/ Efficiency
/ Financial planners
/ Hydrocarbons
/ Lignin
/ Mass spectrometry
/ Metals
/ Nb-doped HZSM-5
/ Pore size
/ Pyrolysis
/ Zeolites
2023
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Efficient Conversion of Lignin to Aromatics via Catalytic Fast Pyrolysis over Niobium-Doped HZSM-5
Journal Article
Efficient Conversion of Lignin to Aromatics via Catalytic Fast Pyrolysis over Niobium-Doped HZSM-5
2023
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Overview
A niobium-doped HZSM-5 (H[Nb]ZSM-5) was prepared by a hydrothermal synthesis method. The morphology, phase structure, composition, pore structure, and acid content of the catalyst were characterized using a series of analysis techniques such as scanning electron microscope (SEM), energy-dispersive X-ray (EDX), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), nitrogen adsorption-desorption, and temperature programmed desorption measurements (NH3-TPD). The H[Nb]ZSM-5 catalyst fully remained within the crystal framework and pore structure of HZSM-5. Meanwhile, introduction of niobium (V) endowed the catalyst with both Lewis acid and Bronsted acid sites. Catalytic fast pyrolysis (CFP) of alkali lignin was carried out through a pyrolysis and gas chromatography-mass spectrometry (Py-GC/MS) at 650 °C and atmospheric pressure. The results indicated that H[Nb]ZSM-5 can efficiently and selectively convert lignin into monoaromatic hydrocarbons (MAHs), compared to the control HZSM-5. Catalyzed by H[Nb]ZSM-5, the content of MAHs and aliphatic hydrocarbons reached 43.4% and 20.8%, respectively; while under the catalysis of HZSM-5, these values were 35.5% and 3.2%, respectively. H[Nb]ZSM-5 remarkably lowered the phenol content to approximately 2.8%, which is far lower than the content (24.9%) obtained under HZSM-5 catalysis.
Publisher
MDPI AG,MDPI
Subject
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