Organosolv Fractionation of Sorghum Stubble for Integrated Biopolymer Recovery: Structural Characterization and Preliminary Mass–Energy Assessment
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Isolation of Structural Polymers by Organosolv Fractionation Procedure
2.2.1. Hemicellulose Isolation
2.2.2. Cellulose Isolation
2.2.3. Lignin Isolation
2.3. Physicochemical Characterization of Sorghum Stubble and Isolated Polymers
2.3.1. Scanning Electron Microscopy (SEM)
2.3.2. X-Ray Diffraction (XRD)
2.3.3. Fourier Transform Infrared Spectroscopy (FTIR)
2.3.4. Thermogravimetric Analysis (TGA)
2.4. Mass and Energy Balance of the Organosolv Fractionation Procedure
2.4.1. Mass Balance
- mfeed = dry mass of sorghum stubble fed into the reactor (kg);
- mcell = recovered cellulose mass (kg);
- mhem = recovered hemicellulose mass (kg);
- mlignin = recovered lignin mass (kg);
- mloss = unquantified material losses (kg).
- mi = represents the mass of each recovered fraction.
2.4.2. Energy Balance
- HHVfeed = higher heating value of sorghum stubble (MJ/kg).
- mi = mass of each recovered fraction (kg);
- HHVi = higher heating value of each fraction (MJ/kg).
2.4.3. Energy–Economic Assessment
- Eelectric = Electrical energy consumed (kWh);
- Punit = unit electricity tariff (MXN $/kWh).
3. Results and Discussion
3.1. Isolation and Characterization of Sorghum Stubble Polymers via Organosolv Fractionation
3.2. Preliminary Mass–Energy Balance of Organosolv Fractionation
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| CFB | Chlorine-Free Bleaching |
| CI | Crystallinity Index |
| CNF | Cellulose Nanofibers |
| DTG | Derivative Thermogravimetric Curve |
| DTPA | Diethylenetriaminepentaacetic Acid |
| FTIR | Fourier Transform Infrared Spectroscopy |
| HHV | Higher Heating Value |
| KOH | Potassium Hydroxide |
| MXN | Mexican Peso |
| PLA | Polylactic Acid |
| SEM | Scanning Electron Microscopy |
| TGA | Thermogravimetric Analysis |
| TG | Thermogravimetric Curve |
| XRD | X-ray Diffraction |
References
- Zhu, X.; Pojić, M.; Tiwari, B.K. Chapter 1—Introduction to agri-food biorefinery and agri-food value chains. In Innovative Biorefinery Processes for Agri-Food Value Chains; Tiwari, B.K., Pojic, M., Zhu, X., Eds.; Academic Press: Cambridge, MA, USA, 2025; pp. 3–20. [Google Scholar] [CrossRef]
- Jones, R.E.; Speight, R.E.; Blinco, J.L.; O’Hara, I.M. Biorefining within food loss and waste frameworks: A review. Renew. Sustain. Energy Rev. 2022, 154, 111781. [Google Scholar] [CrossRef]
- Romero, V.N.; Mendieta, C.M.; Vallejos, M.E.; Area, M.C. Biotechnological advances in lignocellulosic biorefineries for sustainable production of organic acids and higher alcohols. Biomass Bioenergy 2026, 208, 108849. [Google Scholar] [CrossRef]
- Debnath, D.; Sahu, P.; Nejad, M.; Pu, Y.; Tessonnier, J.-P.; Ragauskas, A.; Qi, L.; Wang, T. Structure-guided utilization of lignocellulose for catalysis, energy, and biomaterials. Cell Rep. Phys. Sci. 2025, 6, 102911. [Google Scholar] [CrossRef]
- Machineni, L.; Rao Anupoju, G. Review on valorization of lignocellulosic biomass for green plastics production: Sustainable and cleaner approaches. Sustain. Energy Technol. Assess. 2022, 53, 102698. [Google Scholar] [CrossRef]
- Sharma, A.; Kumar, S.; Chandel, A.K. Strategies to reduce carbon and water footprints in lignocellulosic biorefineries towards net zero carbon emissions. Sustain. Energy Technol. Assess. 2025, 82, 104454. [Google Scholar] [CrossRef]
- Esquivel-Alfaro, M.; Rojas-Carrillo, O.; Sulbarán-Rangel, B.; Rodríguez-Barquero, L.; Palacios-Hinestroza, H.; Rojas, O.J. Pineapple-Derived Nanocellulose for Nanocomposites: Extraction, Processing, and Properties. J. Compos. Sci. 2025, 9, 652. [Google Scholar] [CrossRef]
- Ferreira, J.A.; Taherzadeh, M.J. Improving the economy of lignocellulose-based biorefineries with organosolv pretreatment. Bioresour. Technol. 2020, 299, 122695. [Google Scholar] [CrossRef] [PubMed]
- Mateo, S.; Fabbrizi, G.; Moya, A.J. Lignin from Plant-Based Agro-Industrial Biowastes: From Extraction to Sustainable Applications. Polymers 2025, 17, 952. [Google Scholar] [CrossRef] [PubMed]
- Esquivel-Alfaro, M.; Sulbaran-Rangel, B.; Rojas-Carrillo, O.; Chen, J.; Rodriguez-Quesada, L.; Saenz-Arce, G.; Rojas, O.J. Processing of Pineapple Leaf Fibers for the Production of Oxidized Micro-/Nanofibrillated Cellulose. Polymers 2025, 17, 2671. [Google Scholar] [CrossRef] [PubMed]
- Sulbarán-Rangel, B.; Jouvenson, J.; Barrera-Rojas, J.; Palacios-Hinestroza, H.; Gurubel Tun, K.J. Valorization of Water Hyacinth After Organosolv Fractionation: Cellulose Fiber and Anaerobic Digestion. Waste Biomass Valorization 2023, 15, 1411–1421. [Google Scholar] [CrossRef]
- Hossain, M.S.; Islam, M.N.; Rahman, M.M.; Mostofa, M.G.; Khan, M.A.R. Sorghum: A prospective crop for climatic vulnerability, food and nutritional security. J. Agric. Food Res. 2022, 8, 100300. [Google Scholar] [CrossRef]
- Aruna, C.; Visarada, K.B.R.S. Other Industrial Uses of Sorghum. In Breeding Sorghum for Diverse End Uses; Woodhead Publishing: Cambridge, UK, 2019; pp. 271–292. [Google Scholar] [CrossRef]
- Kariev, A.; Lebedev, V.; Miroshnichenko, D.; Sokol, Y.; Gasanov, M.; Cherkashina, A.; Lutsenko, Y.; Pyshyev, S. Design and Research of Eco-Friendly Biodegradable Composites Based on Renewable Biopolymer Materials, Reed, and Hemp Waste. J. Renew. Mater. 2025, 13, 1645–1660. [Google Scholar] [CrossRef]
- Andrade Alves, J.A.; Lisboa dos Santos, M.D.; Morais, C.C.; Ramirez Ascheri, J.L.; Signini, R.; dos Santos, D.M.; Cavalcante Bastos, S.M.; Ramirez Ascheri, D.P. Sorghum straw: Pulping and bleaching process optimization and synthesis of cellulose acetate. Int. J. Biol. Macromol. 2019, 135, 877–886. [Google Scholar] [CrossRef] [PubMed]
- Pennells, J.; Cruickshank, A.; Chaléat, C.; Godwin, I.D.; Martin, D.J. Sorghum as a novel biomass for the sustainable production of cellulose nanofibers. Ind. Crops Prod. 2021, 171, 113917. [Google Scholar] [CrossRef]
- Li, D.; Long, L.; Ding, S. Alkaline organosolv pretreatment of different sorghum stem parts for enhancing the total reducing sugar yields and p-coumaric acid release. Biotechnol. Biofuels 2020, 13, 106. [Google Scholar] [CrossRef] [PubMed]
- Moretti, C.; Corona, B.; Hoefnagels, R.; Vural-Gursel, I.; Gosselink, R.; Junginger, M. Review of life cycle assessments of lignin and derived products: Lessons learned. Sci. Total Environ. 2021, 770, 144656. [Google Scholar] [CrossRef] [PubMed]
- Linda Moumakwa, N.; Sadiq Mohammed, A.; Olatunde Olakanmi, E.; Bader, T.; Gessesse, A. Sustainable surface modification of sorghum residue-based fiber reinforced polymer composites: Properties and adhesion mechanism. Clean. Mater. 2023, 8, 100189. [Google Scholar] [CrossRef]
- Gasiorowski, R.; Matykiewicz, D.; Janiszewska-Latterini, D. Polylactide (PLA) Composites Reinforced with Natural Fibrous Filler Recovered from the Biomass of Sorghum Leaves or Stems. Materials 2025, 18, 4634. [Google Scholar] [CrossRef] [PubMed]
- Martins, R.P.; Schmatz, A.A.; de Freita, L.A.; Mutton, M.J.R.; Brienzo, M. Solubilization of hemicellulose and fermentable sugars from bagasse, stalks, and leaves of sweet sorghum. Ind. Crops Prod. 2021, 170, 113813. [Google Scholar] [CrossRef]
- Arreaga-Cancino, A.; Esquivel Alfaro, M.; López-Grijalva, A.; Hernández-Cristóbal, O.; Rojas, O.J.; Sulbarán-Rangel, B. Valorization of agricultural waste into organosolv fibers and nanofibers for sustainable polymeric materials. Discov. Sustain. 2026. [Google Scholar] [CrossRef]
- Dussan, K.; Hoek, M.; de Vrije, T.; van de Vondervoort, R.; Bonouvrie, P.; Caliskan, R.; Parenti, A.; Zegada-Lizarazu, W.; Monti, A.; Smit, A.T.; et al. Performance of mild acetone organosolv fractionation on lignocellulosic feedstocks from new cropping systems for production of advanced bioethanol. Ind. Crops Prod. 2025, 223, 120156. [Google Scholar] [CrossRef]
- Hernández, J.; Romero, V.; Escalante, A.; Toríz, G.; Rojas, O.; Sulbarán, B. Agave tequilana Bagasse as Source of Cellulose Nanocrystals via Organosolv Treatment. Bioresources 2018, 13, 3603–3614. [Google Scholar] [CrossRef]
- Wise, L.E.; Murphy, M.; d’Addieco, A.A. Chlorite holocellulose, its fractionnation and bearing on summative wood analysis and on studies on the hemicelluloses. Pap. Trade J. 1946, 122, 35–43. [Google Scholar]
- Amendola, D.; De Faveri, D.M.; Egües, I.; Serrano, L.; Labidi, J.; Spigno, G. Autohydrolysis and organosolv process for recovery of hemicelluloses, phenolic compounds and lignin from grape stalks. Bioresour. Technol. 2012, 107, 267–274. [Google Scholar] [CrossRef] [PubMed]
- Smook, G.A.; Pastor, J.F.C.; Hortal, J.A.G.; Torres, A.L. Manual Para Técnicos de Pulpa Y Papel; (TAPPI) [Technical Association of the Pulp and Paper Industry] Press: Georgia, UK, 1990. [Google Scholar]
- Technical Association of the Pulp and Paper Industry (TAPPI). Ash in Wood, Pulp, Paper and Paperboard: Combustion at 525 °C. TAPPI T 211 om-22; TAPPI: Peachtree Corners, GA, USA, 2022.
- Segal, L.; Creely, J.J.; Martin, A.E.; Conrad, C.M. An Empirical Method for Estimating the Degree of Crystallinity of Native Cellulose Using the X-Ray Diffractometer. Text. Res. J. 1959, 29, 786–794. [Google Scholar] [CrossRef]
- Darmenbayeva, A.; Rajasekharan, R.; Idrisheva, Z.; Aubakirova, R.; Dautova, Z.; Abylkassova, G.; Zhamanbayeva, M.; Afanasenkova, I.; Massalimova, B. Sustainable Cellulose Production from Agro-Industrial Waste: A Comprehensive Review. Polymers 2026, 18, 153. [Google Scholar] [CrossRef] [PubMed]
- Isikgor, F.H.; Becer, C.R. Lignocellulosic biomass: A sustainable platform for the production of bio-based chemicals and polymers. Polym. Chem. 2015, 6, 4497–4559. [Google Scholar] [CrossRef]
- CFE. Tarifas Comisión Federal de Electricidad México. Available online: https://app.cfe.mx/Aplicaciones/CCFE/Tarifas/TarifasCREIndustria/Tarifas/GranDemandaMTO.aspx (accessed on 16 March 2026).
- Puri, L.; Hu, Y.; Naterer, G. Critical review of the role of ash content and composition in biomass pyrolysis. Front. Fuels 2024, 2, 1378361. [Google Scholar] [CrossRef]
- Teramura, H.; Sasaki, K.; Oshima, T.; Kawaguchi, H.; Ogino, C.; Sazuka, T.; Kondo, A. Effective usage of sorghum bagasse: Optimization of organosolv pretreatment using 25% 1-butanol and subsequent nanofiltration membrane separation. Bioresour. Technol. 2018, 252, 157–164. [Google Scholar] [CrossRef] [PubMed]
- Teramura, H.; Sasaki, K.; Oshima, T.; Matsuda, F.; Okamoto, M.; Shirai, T.; Kawaguchi, H.; Ogino, C.; Hirano, K.; Sazuka, T.; et al. Organosolv pretreatment of sorghum bagasse using a low concentration of hydrophobic solvents such as 1-butanol or 1-pentanol. Biotechnol. Biofuels 2016, 9, 27. [Google Scholar] [CrossRef] [PubMed]
- Bahrami, N.; Asadollahi, M.A.; Amiri, H. Closed-loop biorefinery valorization of forage sorghum straw for xanthan gum production using a lignin-derived hydrogel for in-situ detoxification. Ind. Crops Prod. 2026, 242, 122933. [Google Scholar] [CrossRef]
- Cichosz, S.; Masek, A. IR Study on Cellulose with the Varied Moisture Contents: Insight into the Supramolecular Structure. Materials 2020, 13, 4573. [Google Scholar] [CrossRef] [PubMed]
- Zhou, G.; Taylor, G.; Polle, A. FTIR-ATR-based prediction and modelling of lignin and energy contents reveals independent intra-specific variation of these traits in bioenergy poplars. Plant Methods 2011, 7, 9. [Google Scholar] [CrossRef] [PubMed]
- Zhuang, J.; Li, M.; Pu, Y.; Ragauskas, A.J.; Yoo, C.G. Observation of Potential Contaminants in Processed Biomass Using Fourier Transform Infrared Spectroscopy. Appl. Sci. 2020, 10, 4345. [Google Scholar] [CrossRef]
- Tapia-Maruri, D.; Evangelista-Lozano, S.; Alamilla-Beltrán, L.; Camacho-Díaz, B.H.; Ávila-Reyes, S.V.; Villalobos-Espinosa, J.D.C.; Jiménez-Aparicio, A.R. Comparative Evaluation of the Thermal, Structural, Chemical and Morphological Properties of Bagasse from the Leaf and Fruit of Bromelia hemisphaerica Lam. Delignified by Organosolv. Appl. Sci. 2022, 12, 3761. [Google Scholar] [CrossRef]
- Cabrera, M.N.; Rossi, A.; Guarino, J.I.; Felissia, F.E.; Area, M.C. Alkaline Extraction and Ethanol Precipitation of High-Molecular-Weight Xylan Compounds from Eucalyptus Residues. Polymers 2025, 17, 1589. [Google Scholar] [CrossRef] [PubMed]
- Pontes, R.; Michelin, M.; Romaní, A.; Dias, A.M.; Teixeira, J.A.; Nunes, J. Lignin recovery from a mixture of SIX lignocellulosic biomasses within a biorefinery scheme based on a sequential process of autohydrolysis and organosolv. Sep. Purif. Technol. 2023, 325, 124663. [Google Scholar] [CrossRef]
- Salem, K.S.; Kasera, N.K.; Rahman, M.A.; Jameel, H.; Habibi, Y.; Eichhorn, S.J.; French, A.D.; Pal, L.; Lucia, L.A. Comparison and assessment of methods for cellulose crystallinity determination. Chem. Soc. Rev. 2023, 52, 6417–6446. [Google Scholar] [CrossRef] [PubMed]
- Kłosowski, G.; Mikulski, D. Changes in various lignocellulose biomasses structure after microwave-assisted hydrotropic pretreatment. Renew. Energy 2023, 219, 119387. [Google Scholar] [CrossRef]
- Pandey, R.; Dubey, A.; Krishna Prasad, G.; Arputharaj, A.; Raja, A.S.M.; Dubey, R.; Sinha, M.K.; Jose, S. Physico-Chemical Characterization of Lignocellulosic Seed Microfibers. J. Nat. Fibers 2024, 21, 2360493. [Google Scholar] [CrossRef]
- Bhunia, A.K.; Mondal, D.; Parui, S.M.; Mondal, A.K. Characterization of a new natural novel lignocellulose fiber resource from the stem of Cyperus platystylis R.Br. Sci. Rep. 2023, 13, 9699. [Google Scholar] [CrossRef] [PubMed]
- Stanciu, M.-C.; Tanasă, F.; Teacă, C.-A. Crystallinity Changes in Modified Cellulose Substrates Evidenced by Spectral and X-Ray Diffraction Data. Polysaccharides 2025, 6, 30. [Google Scholar] [CrossRef]
- Margellou, A.G.; Psochia, E.A.; Torofias, S.A.; Pappa, C.P.; Triantafyllidis, K.S. Isolation of Highly Crystalline Cellulose via Combined Pretreatment/Fractionation and Extraction Procedures within a Biorefinery Concept. ACS Sustain. Resour. Manag. 2024, 1, 1432–1443. [Google Scholar] [CrossRef] [PubMed]
- Manyatshe, A.; Sibali, L.L. A review on the recovery of cellulose, lignin, and hemicellulose biopolymers from the same source of lignocellulosic biomass—Methodology, characterization and applications. J. Water Process Eng. 2025, 70, 107037. [Google Scholar] [CrossRef]
- Huang, F.-Y. Thermal Properties and Thermal Degradation of Cellulose Tri-Stearate (CTs). Polymers 2012, 4, 1012–1024. [Google Scholar] [CrossRef]
- Abdulkarim, A.M.; Faruq, U.Z.; Muralidharan, K.; Dasari, S.H.K.; Kolakaluri, V.K.; Muhammad, A.B. Comparative multi-analytical characterization of melon shell, maize, sorghum, and millet stalks: Assessing properties for thermochemical conversion. J. Indian Chem. Soc. 2026, 103, 102724. [Google Scholar] [CrossRef]
- Guo, Y.; Zhou, J.; Wen, J.; Sun, G.; Sun, Y. Structural transformations of triploid of Populus tomentosa Carr. lignin during auto-catalyzed ethanol organosolv pretreatment. Ind. Crops Prod. 2015, 76, 522–529. [Google Scholar] [CrossRef]
- Ke, J.; Singh, D.; Yang, X.; Chen, S. Thermal characterization of softwood lignin modification by termite Coptotermes formosanus (Shiraki). Biomass Bioenergy 2011, 35, 3617–3626. [Google Scholar] [CrossRef]
- Chu, S.; Subrahmanyam, A.V.; Huber, G.W. The pyrolysis chemistry of a β-O-4 type oligomeric lignin model compound. Green Chem. 2013, 15, 125–136. [Google Scholar] [CrossRef]
- Carrier, M.; Loppinet-Serani, A.; Denux, D.; Lasnier, J.-M.; Ham-Pichavant, F.; Cansell, F.; Aymonier, C. Thermogravimetric analysis as a new method to determine the lignocellulosic composition of biomass. Biomass Bioenergy 2011, 35, 298–307. [Google Scholar] [CrossRef]
- Liang, Y.-G.; Cheng, B.; Si, Y.-B.; Cao, D.-J.; Jiang, H.-Y.; Han, G.-M.; Liu, X.-H. Thermal decomposition kinetics and characteristics of Spartina alterniflora via thermogravimetric analysis. Renew. Energy 2014, 68, 111–117. [Google Scholar] [CrossRef]
- Srinivasan, S.; Venkatachalam, S. One pot green process for facile fractionation of sorghum biomass to lignin, cellulose and hemicellulose nanoparticles using deep eutectic solvent. Int. J. Biol. Macromol. 2024, 277, 134295. [Google Scholar] [CrossRef] [PubMed]
- Kordbacheh, F.; Heidari, G. Water Pollutants and Approaches for their Removal. Mater. Chem. Horiz. 2023, 2, 139–153. [Google Scholar] [CrossRef]
- Matin, B.; Krička, T.; Đurović, A.; Grubor, M.; Matin, A.; Antonović, A. Lignocellulosic composition and heating value of forest and agricultural biomass: A review. In Proceedings of the 49th Symposium Actual Tasks on Agricultural Engineering, Opatija, Croatia, 28 February–2 March 2023. [Google Scholar]
- Kim, D.; Park, K.Y.; Yoshikawa, K. Conversion of Municipal Solid Wastes into Biochar through Hydrothermal Carbonization. In Engineering Applications of Biochar; Huang, W.-J., Ed.; IntechOpen: London, UK, 2017. [Google Scholar]
- Morales, M.M.; Hoshide, A.K.; Carvalho, L.M.; Tardin, F.D. Sorghum Biomass as an Alternative Source for Bioenergy. Biomass 2024, 4, 1017–1030. [Google Scholar] [CrossRef]
- Hakamada, R.; Frosini de Barros Ferraz, S.; Sulbarán-Rangel, B.; Lucena, L.; Palacios Hinestroza, H. Trends in Brazil’s Forestry Education—Part 3: Employment Patterns of Forest Engineering Graduates from Two Public Universities in the Last 15 Years. Forests 2023, 14, 1911. [Google Scholar] [CrossRef]






| Raw Materials | Ethanol Recovery (%) | Cellulose * (%) | Hemicellulose * (%) | Lignin * (%) | Ash |
|---|---|---|---|---|---|
| (%) | |||||
| Sorghum stubble | 69.83 ± 4.04 | 23.66 ± 3.46 | 36.22 ± 0.91 | 30.35 ± 1.81 | 9.67 ± 0.28 |
| Biomass | Process | Reported Results | Reference |
|---|---|---|---|
| Sorghum bagasse | Organosolv pretreatment using low concentrations of 1-butanol or 1-pentanol | Lignin fractionation; improved enzymatic hydrolysis; ethanol production. Polymer recovery: NR; Solvent recovery: NR. | [35] |
| Sorghum bagasse | Optimized organosolv pretreatment (25% butanol) followed by nanofiltration | High cellulose recovery and delignification for bioethanol production. Quantitative recovery: NR. | [34] |
| Sorghum straw | Alkaline pulping and bleaching | Purified cellulose for cellulose acetate production. Integrated polymer recovery: NR. | [15] |
| Sorghum stover, corn stover and sugarcane bagasse | Organosolv pulping, elemental chlorine-free bleaching and TEMPO-mediated oxidation | CNFs (81% crystallinity). Cellulose 23.7%; Hemicellulose 45.99%; Lignin 30.35%; Solvent recovery: NR. | [22] |
| Forage sorghum straw | Organosolv biorefinery | Xanthan gum and lignin hydrogel. Polymer recovery: NR; Solvent recovery: NR. | [36] |
| Sorghum stubble | Ethanol organosolv fractionation | Cellulose 23.66%; Hemicellulose 36.22%; Lignin 30.35%; Solvent recovery 69.83%. | This work |
| Sample | Tonset (°C) | Tmax (°C) | Residual Char at 700 °C (%) |
|---|---|---|---|
| Sorghum stubble | 263.98 | 347.98 | 7.29 |
| Cellulose | 335.42 | 395.76 | 1.92 |
| Hemicellulose | 219.04 | 329.04 | 26.47 |
| Lignin | 187.86 | 333.46 | 42.01 |
| Fraction | Mass (kg) * | Mass Yield (%) | HHV (MJ/kg) ** | Energy (MJ) |
|---|---|---|---|---|
| Cellulose | 1.00 | 23.66 ± 0.66 | 18.60 | 18.60 |
| Hemicellulose | 1.53 | 36.22 ± 1.55 | 18.60 | 28.47 |
| Lignin | 1.28 | 30.35 ± 0.79 | 20.40 | 26.16 |
| Recovered Solids | 3.81 | 90.23 ± 1.33 | — | 73.24 |
| Losses | 0.41 | 9.77 ± 2.18 | — | 2.83 |
| Feed | 4.23 | 100 | 18.00 | 76.07 |
| Polymer | Equipment | Energy Consumption (kWh) | Total Energy (kWh) | Cost ($MXN) * | Total Cost ($MXN) * |
|---|---|---|---|---|---|
| Organosolv Pulp | Digester | 72.60 | 72.60 | 92.86 | 92.86 |
| Cellulose-rich fraction | Vacuum pump Stirring and heating | 2.32 59.47 | 61.79 | 2.97 76.06 | 79.03 |
| Hemicellulose-rich fraction | Sonifier Vacuum pump Centrifuge | 27.72 15.18 14.96 | 57.86 | 35.45 19.42 19.13 | 74.00 |
| Lignin-rich fraction | Rotary evaporator Mill Solar drying | 207.90 0.55 0.00 | 208.45 | 265.90 0.70 0.00 | 266.61 |
| Total | 400.69 | 512.49 | |||
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Arreaga-Cancino, A.; Esquivel-Alfaro, M.; López-Grijalva, A.; Bernaola-Paucar, R.M.; Sulbarán-Rangel, B. Organosolv Fractionation of Sorghum Stubble for Integrated Biopolymer Recovery: Structural Characterization and Preliminary Mass–Energy Assessment. Macromol 2026, 6, 60. https://doi.org/10.3390/macromol6030060
Arreaga-Cancino A, Esquivel-Alfaro M, López-Grijalva A, Bernaola-Paucar RM, Sulbarán-Rangel B. Organosolv Fractionation of Sorghum Stubble for Integrated Biopolymer Recovery: Structural Characterization and Preliminary Mass–Energy Assessment. Macromol. 2026; 6(3):60. https://doi.org/10.3390/macromol6030060
Chicago/Turabian StyleArreaga-Cancino, Anahí, Marianelly Esquivel-Alfaro, Aracely López-Grijalva, Rosario Marilu Bernaola-Paucar, and Belkis Sulbarán-Rangel. 2026. "Organosolv Fractionation of Sorghum Stubble for Integrated Biopolymer Recovery: Structural Characterization and Preliminary Mass–Energy Assessment" Macromol 6, no. 3: 60. https://doi.org/10.3390/macromol6030060
APA StyleArreaga-Cancino, A., Esquivel-Alfaro, M., López-Grijalva, A., Bernaola-Paucar, R. M., & Sulbarán-Rangel, B. (2026). Organosolv Fractionation of Sorghum Stubble for Integrated Biopolymer Recovery: Structural Characterization and Preliminary Mass–Energy Assessment. Macromol, 6(3), 60. https://doi.org/10.3390/macromol6030060

