Catalytic Pyrolysis of Açaí (Euterpe oleracea Mart.) Seeds: Circular Economy for Agro-Industrial Waste-to-Energy in the Amazon
Abstract
1. Introduction
2. Results and Discussions
2.1. Physical Characterization of Açaí Seeds in Natura (Euterpe oleracea Mart.)
2.2. Thermal Characterization of Açaí (Euterpe oleracea Mart.) Seeds in Natura and NaOH-Activated by Thermogravimetric Analysis (TG/DTG/DTA) and Differential Scanning Calorimetry (DSC)
2.3. Scanning Electron Microscopy and Energy Dispersive Spectroscopy (SEM/EDS) of Raw and Activated Açaí Seeds
2.4. Pyrolysis Process Parameters of Activated Açaí (Euterpe oleracea Mart.) Seeds
2.5. Results of the Morphological, Crystallographic and Textural Characterization of the Biochars Produced
Scanning Electron Microscopy and Energy Dispersive Spectroscopy
2.6. X-Ray Diffractometry for Impregnated Biochars
2.7. Physicochemical and Compositional Characterization of Bio-Oil
2.7.1. Density, Viscosity and Acid Value of Bio-Oil
2.7.2. Fourier Transform Infrared Spectrum
2.7.3. Gas Chromatography Coupled to Mass Spectrometry of Bio-Oils
3. Materials and Methods
3.1. Materials
3.2. Pre-Treatment and Physical Characterization of in Natura Açaí (Euterpe oleracea Mart.), Seeds
3.3. Chemical Activation Process of Açaí (Euterpe oleracea Mart.), Seeds
3.4. Characterization of Açaí Seeds Impregnated with Aqueous Sodium Hydroxide Solution
Thermogravimetric (TG/DTG) Analysis of Activated Açaí (Euterpe oleracea Mart.) Seeds
3.5. Pyrolysis Process of Impregnated Açaí Seeds on a Pilot Scale
3.6. Scanning Electron Microscopy and Energy Dispersive Spectroscopy (SEM/EDS)
3.7. X-Ray Powder Diffractometry (XRD)
3.8. Physicochemical and Chemical Composition of Bio-Oils
3.8.1. Physicochemical Analysis of Bio-Oils and Distillation Fractions
3.8.2. GC-MS of Bio-Oil
3.8.3. Fourier Transform Infrared Spectroscopy (FT-IR)
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Parameter | Açaí Seeds in Natura | [30] | [31] | [32] |
|---|---|---|---|---|
| Moisture (%) | 12.45 | 8.11 | 13.27 | 6.13 |
| Volatile Matter (%) | 85.98 | 81.50 | 80.77 | 80.35 |
| Ash Content (%) | 0.42 | 1.29 | 0.69 | 1.15 |
| Fixed Carbon (%) | 13.60 | 17.21 | 18.50 | 18.50 |
| Higher Heating Value (MJ/kg) | 18.21 | 18.78 | 18.60 | 16.36 |
| Chemical Elements | In Natura Açaí Seeds | NaOH-Activated Açaí Seeds | ||
|---|---|---|---|---|
| Mass [wt%] | Atomic Mass [wt%] | Mass [wt%] | Atomic Mass [wt%] | |
| C | 79.28 | 83.64 | 55.67 | 64.05 |
| O | 20.71 | 16.36 | 35.29 | 30.51 |
| Na | --- | --- | 9.04 | 5.44 |
| Total [%] | 100.00 | 100.00 | 100.00 | 100.00 |
| Process Parameters | Temperature [°C] | ||
|---|---|---|---|
| 450 | 400 | 350 | |
| Mass of Açaí (kg) | 30 | 30 | 30 |
| Mass of GLP (kg) | 10.70 | 8.80 | 4.00 |
| Cracking Time (min) | 135 | 105 | 85 |
| Time to reach Cracking Temperature (min) | 105 | 75 | 55 |
| Burning Time of the Gas Produced (min) | 140 | 110 | 60 |
| Initial Cracking Temperature (°C) | 91 | 96 | 87 |
| Mas of Aqueous Phase (Bio-oil and H2O) (kg) | 8.09 | 7.27 | 6.20 |
| Mass of Biochar (kg) | 12.30 | 14.30 | 16.20 |
| Mass of Bio-oil (kg) | 2.16 | 1.95 | 1.73 |
| Mass of H2O (kg) | 5.93 | 5.32 | 4.47 |
| Mass of Gas (kg) | 9.61 | 8.43 | 7.60 |
| Yield of Bio-oil (%) | 7.20 | 6.50 | 5.77 |
| Yield of Biochar (%) | 41.0 | 47.67 | 54.0 |
| Yield of H2O (%) | 19.77 | 17.73 | 14.90 |
| Yield of Gas (%) | 32.03 | 28.10 | 25.33 |
| Chemical Elements | Biochar 350 °C | Biochar 400 °C | Biochar 450 °C | |||
|---|---|---|---|---|---|---|
| Mass [wt.%] | Atomic Mass [%] | Mass [wt.%] | Atomic Mass [%] | Mass [wt.%] | Atomic Mass [%] | |
| C | 43.73 | 54.86 | 50.50 | 61.12 | 64.14 | 74.58 |
| O | 31.59 | 29.75 | 28.82 | 26.17 | 17.64 | 15.42 |
| Na | 21.70 | 14.22 | 19.29 | 12.19 | 13.94 | 8.48 |
| K | 2.80 | 1.07 | 1.39 | 0.52 | 4.28 | 1.52 |
| Mg | 0.18 | 0.10 | - | - | - | - |
| Total | 100 | 100 | 100 | 100 | 100 | 100 |
| Physicochemical Properties | 450 °C | 400 °C | 350 °C | ANP N° 65 |
|---|---|---|---|---|
| Bio-Oil | Bio-Oil | Bio-Oil | ||
| ρ [g/cm3], 30 °C | 1.02 | 1.01 | 1.01 | 0.82–0.85 |
| I.A [(mg NaOH/g)] | 19.44 | 19.91 | 20.71 | - |
| I.R [-] | ND | ND | ND | - |
| ν [mm2/s], 40 °C, 60 °C | 56.55 | 48.68 | 45.47 | 2.0–4.5 |
| Wavelength (cm−1) | Functional Groups | Bio-Oil | ||
|---|---|---|---|---|
| 350 °C | 400 °C | 450 °C | ||
| 3360 | O—H hydroxyl (Polymeric association) | X | X | X |
| 2960–2855 | Aliphatic C-H (Alkanes) | X | X | X |
| 1685 | C=O (Free amides) | X | X | X |
| 1595–1500 | C=C (Aromatics) | X | X | X |
| 1460 | -CH2- angular deformation (Methylene groups) | X | X | X |
| 1380 | CH3 angular deformation (Dimethyl groups) | X | X | X |
| 1275–1020 | C-O (Esters, Ethers, Alcohols and Phenols) | X | X | X |
| 1110 | C-O (Secondary alcohol) | X | X | X |
| 815–690 | C=C (Aromatic rings 3H adj.) | X | X | X |
| Organic Groups | (%. Area) | ||
|---|---|---|---|
| 350 [°C] | 400 [°C] | 450 [°C] | |
| Aromatic Hydrocarbons | 32.611 | 16.998 | 19.804 |
| Aliphatic Hydrocarbons | 17.096 | 39.805 | 38.081 |
| Ketones | 9.264 | - | 3.618 |
| Alcohol | 4.924 | 5.955 | 11.738 |
| Esters | 1.452 | 2.278 | 1.441 |
| Ethers | 10.693 | 1.507 | 1.27 |
| Aldehydes | 9.425 | 3.462 | 5.582 |
| Carboxylic Acid | 1.453 | 2.097 | 2.019 |
| Other Oxygenated | 6.692 | 12.234 | 13.885 |
| (Nitrogenated and Chlorinated) | 6.387 | 15.665 | 2.563 |
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de Castro, D.A.R.; Ribeiro, H.J.d.S.; Guerreiro, L.H.H.; Assunção, F.P.d.C.; Bernar, L.P.; Silva, N.P.d.; Guimarães, D.M.D.; Monteiro, M.C.; Pizarro Borges, L.E.; Kuchta, K.; et al. Catalytic Pyrolysis of Açaí (Euterpe oleracea Mart.) Seeds: Circular Economy for Agro-Industrial Waste-to-Energy in the Amazon. Catalysts 2026, 16, 485. https://doi.org/10.3390/catal16050485
de Castro DAR, Ribeiro HJdS, Guerreiro LHH, Assunção FPdC, Bernar LP, Silva NPd, Guimarães DMD, Monteiro MC, Pizarro Borges LE, Kuchta K, et al. Catalytic Pyrolysis of Açaí (Euterpe oleracea Mart.) Seeds: Circular Economy for Agro-Industrial Waste-to-Energy in the Amazon. Catalysts. 2026; 16(5):485. https://doi.org/10.3390/catal16050485
Chicago/Turabian Stylede Castro, Douglas Alberto Rocha, Haroldo Jorge da Silva Ribeiro, Lauro Henrique Hamoy Guerreiro, Fernanda Paula da Costa Assunção, Lucas Pinto Bernar, Nilton Pereira da Silva, Daniela Muniz D’Antona Guimarães, Marta Chagas Monteiro, Luiz Eduardo Pizarro Borges, Kerstin Kuchta, and et al. 2026. "Catalytic Pyrolysis of Açaí (Euterpe oleracea Mart.) Seeds: Circular Economy for Agro-Industrial Waste-to-Energy in the Amazon" Catalysts 16, no. 5: 485. https://doi.org/10.3390/catal16050485
APA Stylede Castro, D. A. R., Ribeiro, H. J. d. S., Guerreiro, L. H. H., Assunção, F. P. d. C., Bernar, L. P., Silva, N. P. d., Guimarães, D. M. D., Monteiro, M. C., Pizarro Borges, L. E., Kuchta, K., Machado, N. T., & Duvoisin, S., Jr. (2026). Catalytic Pyrolysis of Açaí (Euterpe oleracea Mart.) Seeds: Circular Economy for Agro-Industrial Waste-to-Energy in the Amazon. Catalysts, 16(5), 485. https://doi.org/10.3390/catal16050485

