Influence of Impurities in the Chemical Processing Chain of Biomass on the Catalytic Valorisation of Cellulose towards γ-Valerolactone
Abstract
:1. Introduction
2. Lignocellulosic Biomass Processing
2.1. Physical Pre-Treatments
- Milling or grinding,
- Chipping,
- Extrusion,
- Processes applied under irradiation (microwave) or ultrasound excitation.
2.2. Chemical Pre-Treatments
- Pre-treatments using a span of organic solvents with or without the addition of a catalyst, that are referred under a common umbrella as Organosolv processes [27].
2.3. Catalytic Chemical Processing of Lignocellulosic Biomass
3. Categorization of the Origin of the Biomass Impurities
4. Biomass Endogenous Impurities
4.1. Impurities from Soil Origin
4.1.1. Phytoremediation Processes
4.1.2. Impurities Affecting the Hydrolysis and Hydrogenation Steps
4.2. Impurities from Plant Proteins
4.3. Influence of Other Compounds
5. Biomass Exogenous Impurities
5.1. Influence of the Catalysts Originating from Hydrolysis Step
5.2. Physical Pre-Treatments
5.3. Experimental Reactor Setup
6. Catalyst Deactivation by Carbonaceous Species (Humins and Coke)
6.1. Catalysts Deactivation by Humins
6.2. Catalysts Deactivation by Coke
7. Summary
8. Future Perspectives
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Catalyst | Reaction Temperature (°C) | Solvent | H2 Pressure [bar] | Reaction Time [h] | Impurity Type | GVL Yield [%] without Impurities | GVL Yield [%] with Impurities | Ref. |
---|---|---|---|---|---|---|---|---|
Ru(5%)/C | 150 | dioxane | 50 | 1 | 0.025 wt% H2SO4 | 93 | 48 | [38] |
Ru(5%)/C | 150 | dioxane | 50 | 1 | 0.05 wt% H2SO4 | 93 | 10 | [38] |
Ru(5%)/C | 150 | water | 35 | 20 | 0.5 mol L−1 H2SO4 | 98 | 60 | [39] |
Ru(1%)/ZrO2 | 150 | dioxane | 50 | 3 | 0.25 wt% H2SO4 | 47 | 3 | [38] |
Ru(1%)/ZrO2 | 150 | dioxane | 50 | 15 | 0.5 wt% H2SO4 | 90 b | 12 b | [40] |
Ru(1%)/ZrO2 | 90 | water | 50 | 20 | 0.5 wt% H2SO4 | 95 b | 75 b | [40] |
Ru(1%)/TiO2 | 150 | dioxane | 50 | 15 | 0.5 wt% H2SO4 | 95 b | 10 b | [40] |
Ru(1%)/TiO2 | 90 | water | 50 | 20 | 0.5 wt% H2SO4 | 95 b | 80 b | [40] |
Ru(5%)/ZrO2 | 30 | water | 50 | 1 | 0.9 wt% H2SO4 + HCOOH | 91 | 0 | [41] |
Ru(1%)/ZrO2 | 150 | dioxane | 50 | 1 | Cysteine (Cys) a | 100 b | 12 b | [40] |
Ru(1%)/ZrO2 | 150 | dioxane | 50 | 1 | Metheonine (Meth) a | 100 b | 48 b | [40] |
Ru(5%)/TiO2 | 190 | water | 20 | 1 | 1 μg Zn | 98 | 44 | [42] |
Ru(1%)/TiO2 | 170 | water | 50 | 5 | Humins | 31 | 6 | [43] |
Ru(1%)/TiO2 | 150 | dioxane | 50 | 1 | 0.5 wt% humins | 90 b | 53 b | [40] |
Ru(1%)/ZrO2 | 150 | dioxane | 50 | 1 | 0.5 wt% humins | 90 b | 50 b | [40] |
Ru(5%)/C | 150 | water | 40 | 1 | 2 mmol HCOOH | 67 | 2 | [44] |
Ru(1%)/ZrO2 | 150 | dioxane | 50 | 10 | 0.5 wt% HCOOH | 90 b | 0 b | [40] |
Ru(1%)/ZrO2 | 90 | water | 50 | 10 | 0.5 wt% HCOOH | 99 b | 10 b | [40] |
Ru(1%)/TiO2 | 150 | dioxane | 50 | 10 | 0.5 wt% HCOOH | 98 b | 3 b | [40] |
Ru(1%)/TiO2 | 90 | water | 50 | 10 | 0.5 wt% HCOOH | 90 b | 3 b | [40] |
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Kashyap, P.; Brzezińska, M.; Keller, N.; Ruppert, A.M. Influence of Impurities in the Chemical Processing Chain of Biomass on the Catalytic Valorisation of Cellulose towards γ-Valerolactone. Catalysts 2024, 14, 141. https://doi.org/10.3390/catal14020141
Kashyap P, Brzezińska M, Keller N, Ruppert AM. Influence of Impurities in the Chemical Processing Chain of Biomass on the Catalytic Valorisation of Cellulose towards γ-Valerolactone. Catalysts. 2024; 14(2):141. https://doi.org/10.3390/catal14020141
Chicago/Turabian StyleKashyap, Preeti, Magdalena Brzezińska, Nicolas Keller, and Agnieszka M. Ruppert. 2024. "Influence of Impurities in the Chemical Processing Chain of Biomass on the Catalytic Valorisation of Cellulose towards γ-Valerolactone" Catalysts 14, no. 2: 141. https://doi.org/10.3390/catal14020141