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Keywords = plantain fibers

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17 pages, 493 KB  
Review
Composition, Functionality, and Use of Plantain Peel (Musa paradisiaca): A Scoping Review
by Andrea Pissatto Peres, Cláudia Puerari, Bruna Teles Soares Beserra, Juliana Aparecida Correia Bento, Maressa Caldeira Morzelle and Giuseppe Zeppa
Foods 2026, 15(7), 1133; https://doi.org/10.3390/foods15071133 - 25 Mar 2026
Viewed by 1587
Abstract
Plantain (Musa paradisiaca) peel is an agro-industrial waste product with remarkable functional potential, attributed to its composition of bioactive compounds with antioxidant and antimicrobial properties. Given this scenario, this scoping review aimed to map and synthesize the scientific evidence regarding the [...] Read more.
Plantain (Musa paradisiaca) peel is an agro-industrial waste product with remarkable functional potential, attributed to its composition of bioactive compounds with antioxidant and antimicrobial properties. Given this scenario, this scoping review aimed to map and synthesize the scientific evidence regarding the nutritional composition and potential functionalities of plantain peel. A scoping review approach was used, and data were reported using the PRISMA-ScR checklist. The studies evaluating the use of plantain peel were included without restrictions on language or publication date. The following databases were searched: Embase, MEDLINE (via PubMed), Scopus, and Web of Science. Additional searches were conducted through Google Scholar. The protocol has been registered prospectively on the Open Science Framework. This review’s findings included 53 studies. All of them presented methodological limitations that hindered further analysis and the generation of robust evidence. This analysis detailed the chemical composition of the peel, showing that it varies with ripeness stage and processing and is an excellent source of fiber and minerals. Several technological applications are explored, including the use of peel in the production of functional foods, the development of nanoparticles with antimicrobial activity, and its use as a substrate for the biosynthesis of industrial enzymes and citric acid. This review also addresses the possible health benefits that have already been studied in animal and in vitro models. Plantain peel is a promising agro-industrial by-product with high fiber, starch, and bioactive compound content and functional properties. Despite advances, challenges in sensory acceptance and process standardization limit industrial application. A key research gap remains in the systematic evaluation of antinutrient reduction (e.g., oxalates, phytates) and pesticide residue levels during the processing of plantain peel, a mandatory step before its widespread application in the food industry (e.g., flours and food additives). Further research on optimization and bioactive mechanisms is essential to enable its large-scale use and strengthen its role in the circular bioeconomy and human health. Full article
(This article belongs to the Section Food Nutrition)
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24 pages, 2999 KB  
Article
Development and Characterization of Reinforced Flexible Packaging Based on Amazonian Cassava Starch Through Flat Sheet Extrusion
by Johanna Garavito, Sofía Castellanos-González, Clara P. Peña-Venegas and Diego A. Castellanos
Polymers 2026, 18(6), 675; https://doi.org/10.3390/polym18060675 - 11 Mar 2026
Cited by 2 | Viewed by 2152
Abstract
Thermoplastic starch (TPS) can be a sustainable alternative to petrochemical plastics for flexible packaging, especially in rainforests and tropical regions where native starch sources such as cassava are abundant. However, one problem preventing TPS packaging from widespread use is its susceptibility to moisture. [...] Read more.
Thermoplastic starch (TPS) can be a sustainable alternative to petrochemical plastics for flexible packaging, especially in rainforests and tropical regions where native starch sources such as cassava are abundant. However, one problem preventing TPS packaging from widespread use is its susceptibility to moisture. This study evaluated TPS formulations based on Amazonian cassava starch reinforced with plantain leaf fibers, beeswax, and low-density polyethylene (LDPE) particles. The plastic compounds were extruded to obtain pellets and then films at 120–130 °C. The resulting films were then cut and heat-sealed to obtain flexible packaging. Different properties of the TPS packages were evaluated, such as mechanical strength, water vapor transmission (WVTR), color, infrared spectrum (FT-IR), and moisture adsorption. The results showed that the formulation with beeswax (2% w/w), plantain leaves powder (1% w/w), and LDPE powder (2% w/w) had a higher tensile strength (5.99 MPa) and moisture barrier (WVTR = 366.6 g m−2 d−1) compared to the control formulation only with plasticizers (glycerol and water) but without reinforcements (0.48 MPa and 1486.6 g m−2 d−1, respectively). Films with only beeswax (4% w/w) and plantain leaves powder (2.5% w/w) had tensile strength = 5.53 MPa and WVTR = 716.8 g m−2 d−1, with higher moisture adsorption compared to the samples with LDPE. In both cases, homogeneous and heat-sealable bags were obtained. The reinforced TPS films can be used to reduce the environmental impact generated by single-use packaging applications such as food commercialization. Full article
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10 pages, 827 KB  
Article
Valorization of Agro-Industrial Waste of Cajanus cajan Shell, Plantain Peels (Musa spp.) and Zea mays Cob Husk on Rumen Degradation Kinetics and Mitigation of Greenhouse Gases Production in Ruminants
by Jorge Quintana-Zamora, Verónica Andrade-Yucailla, Rocio Yagual-De La Cruz, Katherine Contreras-Barros, Marcos Barros-Rodríguez, Carlos Guishca-Cunuhay, Jorge Iraola and Andrés Pech-Cervantes
Ruminants 2026, 6(1), 11; https://doi.org/10.3390/ruminants6010011 - 2 Feb 2026
Cited by 1 | Viewed by 1138
Abstract
The aim of this research was to evaluate the effect of agro-industrial waste from C. cajan shell, plantain peels (Musa spp.), and Zea mays cob husk on in situ ruminal degradation kinetics and in vitro gas production. Rumen degradation of DM in [...] Read more.
The aim of this research was to evaluate the effect of agro-industrial waste from C. cajan shell, plantain peels (Musa spp.), and Zea mays cob husk on in situ ruminal degradation kinetics and in vitro gas production. Rumen degradation of DM in the soluble fraction (A) was higher (p = 0.0001) in plantain peel (37.5%). The insoluble but potentially degradable fraction (B) was higher (p = 0.0001) in C. Cajan shell (71.7%). Regarding the degradation rate in percentage per hour (c: 0.13%/h), degradation potential (A + B: 86.3%) and effective degradation at the different passage rates (k) (0.02: 79.6%, 0.05: 72.4%, and 0.08: 67.3% k, respectively), it was higher (p < 0.05) in the plantain peels. Rumen NDF degradation was higher (p < 0.05) in plantain peels for all degradation parameters (A + B: 80.8, k: 0.02: 57.1%, 0.05: 44.9%, and 0.08: 37.6%, respectively). Total gas production kinetics (D; 333.3 mLgas/0.5 g degraded DM) and gas production at 24, 48, and 96 h were lower (p = 0.0001) in plantain peels. CH4 production was low (p = 0.0001) in plantain peels at all evaluated times (24 h: 32.7, 48 h: 37.9, and 96 h: 53.5 mL/0.5 g degraded DM). CO2 production was lower (p < 0.05) in C. Cajan and plantain peels at all evaluated times. Under the conditions of this study, it can be concluded that the use of plantain peels (Musa spp.) can be beneficial to animals when incorporated into the diet, as it contains a similar protein content to tropical forages, as well as low fiber content, high ruminal degradation, and secondary compounds that benefit energy maximization by mitigating enteric gas production in ruminants. Full article
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10 pages, 1287 KB  
Article
Influence of Banana Genotype on Polyphenol Content and Starch Digestibility of Unripe Flours
by Edith Agama-Acevedo, Ana L. Solis-Mariano, Sherlin M. Altamirano-Monico, Vareska L. Zárate-Córdova and Luis A. Bello-Perez
Foods 2025, 14(23), 4048; https://doi.org/10.3390/foods14234048 - 26 Nov 2025
Cited by 1 | Viewed by 1144
Abstract
Banana fruits are consumed raw as desserts or after cooking. They are classified based on their genotype as pure (AAA) or hybrid cultivars (AAB). There is a growing interest in the use of unripe banana flours to produce functional foods due to the [...] Read more.
Banana fruits are consumed raw as desserts or after cooking. They are classified based on their genotype as pure (AAA) or hybrid cultivars (AAB). There is a growing interest in the use of unripe banana flours to produce functional foods due to the presence of polyphenols and dietary fiber (including resistant starch). This study aimed to investigate the impact of banana genotype on the content of polyphenols and starch digestibility. One pure cultivar and two hybrids (dessert and cooking cultivars) were studied. The chemical composition, polyphenol content, antioxidant activity, and starch hydrolysis rate were analyzed. The hybrid cultivars (manzano and plantain) showed a higher total starch content than the pure cultivar (morado); dietary fiber showed an inverse pattern, with the cooking hybrid cultivar (plantain) presenting the lowest value. The dessert hybrid (manzano) exhibited the lowest value of the FRAP radical, indicating the presence of different polyphenols in different banana genotypes. Rapidly digestible starch showed the highest value due to the cooking process, with the hybrid dessert banana (manzano) demonstrating the slowest starch digestion rate. The starch hydrolysis constant varied: morado presented the highest value, while the dessert hybrid (manzano) showed the lowest. These results can help to determine the applications of banana cultivars. Full article
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20 pages, 4263 KB  
Article
Fully Biobased Composite from Lignocellulosic Plantain Waste with Potential Use in the Manufacture of Lollipop Sticks
by Juan Pablo Castañeda-Niño, Lina Gisselth Ospina-Aguilar, Yean Carlos Zapata-Diaz, Robin Octavio Zuluaga-Gallego, Johanna Andrea Serna-Jiménez, José Fernando Solanilla-Duque, Emilio Pérez-Pacheco and Jose Herminsul Mina-Hernandez
Polysaccharides 2025, 6(2), 41; https://doi.org/10.3390/polysaccharides6020041 - 8 May 2025
Viewed by 3300
Abstract
Lollipop sticks were developed with fully biobased materials made of different plantain by-products, using extrusion processing followed by hot compression molding. The thermoplastic matrix was constituted of flour and starch from plantain bunch pulp and plantain peel cake. At the same time, two [...] Read more.
Lollipop sticks were developed with fully biobased materials made of different plantain by-products, using extrusion processing followed by hot compression molding. The thermoplastic matrix was constituted of flour and starch from plantain bunch pulp and plantain peel cake. At the same time, two types of reinforcement were used, one of them being yarn from the lignocellulosic fibers of the pseudostem sheaths to constitute the BC1 lollipop stick and the other directly from the plantain pseudostem treated sheath to establish the BC2 lollipop stick. The biobased lollipop sticks were characterized in the migration test, finding a higher structural stability in lipophilic foods, with chocolate chosen as a confection to undergo physicochemical, structural, mechanical, and dynamic–mechanical characterization when interacting with the two biobased lollipop sticks until post-consumption was reached. The BC2 lollipop stick was characterized by maintaining higher stability in maximum tensile strength (12.62 to 11.76 MPa), higher flexural strength (19.07 to 10.11 MPa), storage modulus (4.97 to 1.65 GPa at 30 °C), and Tan delta (66.90 to 52.64 °C). Full article
(This article belongs to the Topic Polymers from Renewable Resources, 2nd Volume)
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16 pages, 3606 KB  
Article
Influence of Core Starch and Lignocellulosic Fibers from Plantain (Musa paradisiaca L.) Pseudostem on the Development of Thermoplastic Starches and Biobased Composite Materials
by Andrés Mauricio Munar, Danilo Bonilla Trujillo, Nelly María Méndez, Carlos Guillermo Mesa, Paola Andrea Tenorio, Francisco Montealegre-Torres, Yean Carlos Zapata-Díaz, Lina Gisselth Ospina-Aguilar and Juan Pablo Castañeda-Niño
Polymers 2025, 17(7), 859; https://doi.org/10.3390/polym17070859 - 23 Mar 2025
Cited by 5 | Viewed by 2771
Abstract
As the demand for sustainable and environmentally friendly materials has increased, renewable resources have been explored for the development of biobased composites. Two biobased composite materials were developed from thermoplastic starch (TPS), short fibers from plantain pseudostems sheaths and the starch from the [...] Read more.
As the demand for sustainable and environmentally friendly materials has increased, renewable resources have been explored for the development of biobased composites. Two biobased composite materials were developed from thermoplastic starch (TPS), short fibers from plantain pseudostems sheaths and the starch from the plantain pseudostem core, using twin-screw extrusion and compression molding. Based on the findings, there is evidence of a biobased composite material with reduced water absorption of up to 9.9%, keeping thermal stability at a degradation temperature between 300 and 306 °C and increasing tensile properties by over 506%, although hardness showed slight increases (4.6%). In addition, the capacity of the sheath to generate a water vapor barrier is highlighted by reducing the magnitude of losses in mechanical properties during storage for a period of 8 days. This study contributes to the use of agricultural residues to create sustainable products, offering a pathway toward reducing dependency on synthetic polymers and mitigating environmental impact. Full article
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21 pages, 2143 KB  
Article
Physicochemical Characterization and Extrusion Effects on the Optimization of Agro-Industrial Byproduct Flour Formulation
by Diana Paola Navia-Porras, Carolina Franco-Urbano, Laura Sofía Torres-Valenzuela, José Luis Plaza-Dorado and José Luis Hoyos-Concha
Sustainability 2025, 17(5), 1950; https://doi.org/10.3390/su17051950 - 25 Feb 2025
Cited by 3 | Viewed by 1846
Abstract
During the post-harvest of coffee and plantain, organic residues with high potential for utilization are generated. This work aimed to measure the effect of extrusion on the nutritional, physicochemical, and functional properties of mixtures of coffee pulp (CP), rejected plantain (RP), and plantain [...] Read more.
During the post-harvest of coffee and plantain, organic residues with high potential for utilization are generated. This work aimed to measure the effect of extrusion on the nutritional, physicochemical, and functional properties of mixtures of coffee pulp (CP), rejected plantain (RP), and plantain rachis (PR) flours. The residues were dehydrated, milled, and mixed according to the simplex reticular experimental design. Subsequently, the mixtures were extruded. The properties before and after extrusion were determined. It was found that the effect of extrusion reduced the crude fiber and lipid content composition, but protein and ash content were not changed. A positive relation was found between coffee pulp flour and rachis plantain flour in response to total phenolic content (TPC) and antioxidant activity (AA). Some blends increased the TPC and AA but others reduced it. At the same time, water activity and water and oil absorption capacity showed a significant extrusion effect, while the pH did not. It was determined that the optimum mixture extruded was 0.364:0.333:0.303 of CP, RP, and PR, respectively. Extrusion reduced all pasting properties of the optimized blend. The flours studied presented a relevant nutritional and functional contribution, which favors their viability for use in the food industry. Full article
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21 pages, 5226 KB  
Article
Characterization and Implementation of Cocoa Pod Husk as a Reinforcing Agent to Obtain Thermoplastic Starches and Bio-Based Composite Materials
by Andrés Mauricio Holguín Posso, Juan Carlos Macías Silva, Juan Pablo Castañeda Niño, Jose Herminsul Mina Hernandez and Lety del Pilar Fajardo Cabrera de Lima
Polymers 2024, 16(11), 1608; https://doi.org/10.3390/polym16111608 - 6 Jun 2024
Cited by 21 | Viewed by 8170
Abstract
When the cocoa pod husk (CPH) is used and processed, two types of flour were obtained and can be differentiated by particle size, fine flour (FFCH), and coarse flour (CFCH) and can be used as a possible reinforcement for the development of bio-based [...] Read more.
When the cocoa pod husk (CPH) is used and processed, two types of flour were obtained and can be differentiated by particle size, fine flour (FFCH), and coarse flour (CFCH) and can be used as a possible reinforcement for the development of bio-based composite materials. Each flour was obtained from chopping, drying by forced convection, milling by blades, and sieving using the 100 mesh/bottom according to the Tyler series. Their physicochemical, thermal, and structural characterization made it possible to identify the lower presence of lignin and higher proportions of cellulose and pectin in FFCH. Based on the properties identified in FFCH, it was included in the processing of thermoplastic starch (TPS) from the plantain pulp (Musa paradisiaca) and its respective bio-based composite material using plantain peel short fiber (PPSF) as a reinforcing agent using the following sequence of processing techniques: extrusion, internal mixing, and compression molding. The influence of FFCH contributed to the increase in ultimate tensile strength (7.59 MPa) and higher matrix–reinforcement interaction when obtaining the freshly processed composite material (day 0) when compared to the bio-based composite material with higher FCP content (30%) in the absence of FFCH. As for the disadvantages of FFCH, reduced thermal stability (323.57 to 300.47 °C) and losses in ultimate tensile strength (0.73 MPa) and modulus of elasticity (142.53 to 26.17 MPa) during storage progress were identified. In the case of TPS, the strengthening action of FFCH was not evident. Finally, the use of CFCH was not considered for the elaboration of the bio-based composite material because it reached a higher lignin content than FFCH, which was expected to decrease its affinity with the TPS matrix, resulting in lower mechanical properties in the material. Full article
(This article belongs to the Special Issue Preparation and Application of Biomass-Based Materials)
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17 pages, 2876 KB  
Article
Potential of Plantain Pseudostems (Musa AAB Simmonds) for Developing Biobased Composite Materials
by Juan Pablo Castañeda-Niño, Jose Herminsul Mina Hernandez and Jose Fernando Solanilla Duque
Polymers 2024, 16(10), 1357; https://doi.org/10.3390/polym16101357 - 10 May 2024
Cited by 8 | Viewed by 6200
Abstract
A plantain pseudostem was harvested and processed on the same day. The process began with manually separating the sheaths (80.85%) and the core (19.14%). The sheaths were subjected to a mechanical shredding process using paddles, extracting 2.20% of lignocellulosic fibers and 2.12% of [...] Read more.
A plantain pseudostem was harvested and processed on the same day. The process began with manually separating the sheaths (80.85%) and the core (19.14%). The sheaths were subjected to a mechanical shredding process using paddles, extracting 2.20% of lignocellulosic fibers and 2.12% of sap, compared to the fresh weight of the sheaths. The fibers were washed, dried, combed, and spun in their native state and subjected to a steam explosion treatment, while the sap was subjected to filtration and evaporation. In the case of the core, it was subjected to manual cutting, drying, grinding, and sieving to separate 12.81% of the starch and 6.39% of the short lignocellulosic fibers, compared to the fresh weight of the core. The surface modification method using steam explosion succeeded in removing a low proportion of hemicellulose and lignin in the fibers coming from the shims, according to what was shown by Fourier Transform Infrared Spectroscopy (FT-IR), Thermogravimetric Analysis (TGA), and Differential Scanning Calorimetry (DSC), achieving increased σmax and ε from the tensile test and greater thermal stability compared to its native state. The sap presented hygroscopic behavior by FT-IR and the highest thermal stability from TGA, while the starch from the core presented the lowest hygroscopic character and thermal stability. Although the pseudostem supplied two types of fibers, lower lignin content was identified in those from the core. Finally, the yarns were elaborated by using the fibers of the sheaths in their native and steam-exploded states, identifying differences in the processing and their respective physical and mechanical properties. Full article
(This article belongs to the Special Issue Preparation and Application of Biomass-Based Materials)
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14 pages, 311 KB  
Article
Production and Characterization of Snacks Utilizing Composite Flour from Unripe Plantain (Musa paradisiaca), Breadfruit (Artocarpus altilis), and Cinnamon (Cinnamomum venum)
by Mojisola Olanike Adegunwa, Busayo Olabisi Ogungbesan, Olasunkanmi Abdulganiu Adekoya, Ebunoluwa Eniola Akinloye, Oluwadolapo Daniel Idowu and Oladeji Emmanuel Alamu
Foods 2024, 13(6), 852; https://doi.org/10.3390/foods13060852 - 11 Mar 2024
Cited by 8 | Viewed by 4687
Abstract
This study aimed to assess the characteristics of flour and cookies produced from composite plantain, breadfruit, and cinnamon blends. Six samples were created by combining the flours (Plantain, Breadfruit, and Cinnamon Composite (PBC)) in the following proportions: 100:0:0, 0:100:0, 65:30:5, 70:25:5, 75:20:5, and [...] Read more.
This study aimed to assess the characteristics of flour and cookies produced from composite plantain, breadfruit, and cinnamon blends. Six samples were created by combining the flours (Plantain, Breadfruit, and Cinnamon Composite (PBC)) in the following proportions: 100:0:0, 0:100:0, 65:30:5, 70:25:5, 75:20:5, and 80:15:5. The flours were subjected to proximate, functional, and color analyses using standard methods. The results obtained included moisture content (7.13–9.56%), ash (6.37–7.14%), protein (8.38–12.62%), fat (8.36–12.92%), crude fiber (6.54–7.52%), and carbohydrate (51.84–60.83%). The functional properties of the flour included bulk density (0.66–0.80 g/mol), water absorption capacity (1.91–2.87%), oil absorption capacity (0.88–1.91%), swelling power (3.89–5.30), solubility index (0.01–0.04%), dispersibility (48.55–66.05%), tannin content (1.71–3.98 mg/g), and phytate content (1.57–3.35 mg/g). The analyses revealed significant differences (p < 0.05) in the proximate composition of the cookie samples. The values ranged from 6.19 to 7.99% for moisture content, 16.06 to 24.75% for crude fat, 3.10 to 8.13% for crude ash, 3.62 to 7.15% for crude fiber, 8.18 to 10.99% for crude protein, and 43.82 to 59.03% for carbohydrates. Substantial changes (p < 0.05) in color analysis and sensory qualities were observed in the cookie samples, and sample B (100% breadfruit flour) had the most appreciable color attributes. However, the cookies produced from 75:20:5 plantain–breadfruit–cinnamon flour had the highest overall acceptability along with improved nutritional properties. These findings suggest that adding breadfruit and cinnamon flour to cookies could improve their nutritional content, particularly in ash, fiber, fat, and protein. Full article
15 pages, 3390 KB  
Article
Using Plantain Rachis Fibers and Mopa-Mopa Resin to Develop a Fully Biobased Composite Material
by Valeria Sánchez Morales, Brenda Alejandra Martínez Salinas, Jose Herminsul Mina Hernandez, Estivinson Córdoba Urrutia, Lety del Pilar Fajardo Cabrera de Lima, Harry Maturana Peña, Alex Valadez González, Carlos R. Ríos-Soberanis and Emilio Pérez-Pacheco
Polymers 2024, 16(3), 329; https://doi.org/10.3390/polym16030329 - 25 Jan 2024
Viewed by 2633
Abstract
A completely biobased composite material was developed using a matrix of natural resin extracted from the Elaegia pastoensis Mora plant, commonly known as Mopa-Mopa or “Barniz de Pasto”, reinforced with fibers extracted from plantain rachis agricultural residues. A solvent process, involving grinding, distillation, [...] Read more.
A completely biobased composite material was developed using a matrix of natural resin extracted from the Elaegia pastoensis Mora plant, commonly known as Mopa-Mopa or “Barniz de Pasto”, reinforced with fibers extracted from plantain rachis agricultural residues. A solvent process, involving grinding, distillation, filtration, and drying stages, was implemented to extract the resin from the plant bud. To obtain the resin from the plant bud, the vegetable material was ground and then dissolved in a water-alcohol blend, followed by distillation, filtration, and grinding until the powdered resin was ready for use in the preparation of the biocomposite. Likewise, using mechanical techniques, the plantain rachis fibers were extracted and worked in their native condition and with a previous alkalinization surface treatment. Finally, the biocomposite material was developed with and without incorporating stearic acid, which was included to reduce the material’s moisture absorption. Ultimately stearic acid was used as an additive to reduce biocomposite moisture absorption. The tensile mechanical results showed that the Mopa-Mopa resin reached a maximum strength of 20 MPa, which decreased with the incorporation of the additive to 12 MPa, indicating its plasticization effect. Likewise, slight decreases in moisture absorption were also evidenced with the incorporation of stearic acid. With the inclusion of rachis plantain fibers in their native state, a reduction in the tensile mechanical properties was found, proportional to the amount added. On the other hand, with the alkalinization treatment of the fibers, the behavior was the opposite, evidencing increases in tensile strength, indicating that the fiber modification improved the interfacial adhesion with the Mopa-Mopa matrix. On the other hand, the evaluation of the moisture absorption of the biocomposite material evidenced, as expected, that the absorption level was favored by the relative humidity used in the conditioning (47, 77, and 97%), which also had an impact on the decrease of the mechanical tensile properties, being this was slightly counteracted by the inclusion of stearic acid in the formulation of the material. Full article
(This article belongs to the Special Issue Preparation and Application of Biomass-Based Materials)
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2 pages, 121 KB  
Abstract
Potential of Lignocellulosic Agro-Waste to Produce Value-Added Products
by Uloma Onyeka, Egwu Kalu and Damaris Okafor
Proceedings 2023, 91(1), 127; https://doi.org/10.3390/proceedings2023091127 - 22 Jan 2024
Viewed by 1560
Abstract
This work focused on the effect of combustion on the yield, composition, and strength of food-grade bio- alkali from lignocellulosic agro-waste. Seven lignocellulosic types of agro-waste, including plantain stalk, plantain peel (green and ripe), empty palm bunch, palm fiber, coconut fiber, and cocoa [...] Read more.
This work focused on the effect of combustion on the yield, composition, and strength of food-grade bio- alkali from lignocellulosic agro-waste. Seven lignocellulosic types of agro-waste, including plantain stalk, plantain peel (green and ripe), empty palm bunch, palm fiber, coconut fiber, and cocoa pod were sun-dried and combusted using two methods: open-air combustion (OAC) and muffle furnace combustion (MFC). Ash and potash yield from the two methods of combustion were determined using simple proportion calculations. A two-stage hydrothermal extraction process was carried out on the ash using a deionized water ratio of 1:10 for food-grade bio-alkali, and the leachates were evaluated for pH, alkalinity, and metallic ion contents using standard analytical methods. The data obtained were statistically analyzed via a two-way ANOVA. The OAC samples had a higher ash content range (8.24–18.6%) compared to MFC samples (7.37–9.89%). Potash yield (%) is both biomass and combustion-method dependent, with MFC having a higher average yield (3.05%) than OAC (2.35%). The pH of the leachates for all samples ranged from 10.3 to 12.0. All the agro-waste exhibited a similar pattern in the order of magnitude of the metals of which they were composed (K > Mg > Ca > Zn > Na). For the minerals, PO4 was highest (193.1 g/L) in plantain stalk, and KOH and K2CO3 were least (10.0 g/L) in coconut fiber, while the highest alkalinity was obtained in ripe plantain peel (62.1 mg/L). The yield and quality of bio-alkali produced were influenced by the combustion method and source of biomass. The bio-alkali from the different biomass types tested can be used as sources of food-grade emulsifiers due to their high nature of alkalinity. This signifies zero waste and is also a boost to the circular economy. The average alkalinity studied under MFC was 33.6 mg/L and for OAC was 27.3 mg/L, suggesting that MFC is a more promising approach. Worthy of exploration is the significant high content (19.3 mg/L) of chlorine in plantain stalk. Full article
(This article belongs to the Proceedings of The 14th European Nutrition Conference FENS 2023)
20 pages, 3534 KB  
Article
Development of Gluten-Free Bread Production Technology with Enhanced Nutritional Value in the Context of Kazakhstan
by Nazira Utarova, Mukhtarbek Kakimov, Bożena Gajdzik, Radosław Wolniak, Ainur Nurtayeva, Saule Yeraliyeva and Michał Bembenek
Foods 2024, 13(2), 271; https://doi.org/10.3390/foods13020271 - 15 Jan 2024
Cited by 20 | Viewed by 7942
Abstract
This research aims to enhance the nutritional value of gluten-free bread by incorporating a diverse range of components, including additives with beneficial effects on human health, e.g., dietary fibers. The research was focused on improving the texture, taste, and nutritional content of gluten-free [...] Read more.
This research aims to enhance the nutritional value of gluten-free bread by incorporating a diverse range of components, including additives with beneficial effects on human health, e.g., dietary fibers. The research was focused on improving the texture, taste, and nutritional content of gluten-free products by creating new recipes and including novel biological additives. The goal was to develop gluten-free bread with less than 3 ppm gluten content that can be eaten by people suffering from gluten sensitivity. The physical and chemical properties of gluten-free rice, corn, green buckwheat, chickpea, amaranth, and plantain flours were examined to understand their unique characteristics and the possibility of their mixing combination to achieve the desired results. Initially, nine recipes were prepared, and in survey research, four baking recipes were selected and tested. The composition of amino acids in the prepared gluten-free bread was determined. The variant made of corn, green buckwheat flour with plantain was found to be top-rated. Changes in the nutritional content of the new product were analyzed, and general regulations and nutritional values were identified. Experimental baking processes were carried out, leading to the successful formulation of gluten-free bread containing corn, green buckwheat, and plantain flour in a ratio of 40:40:20, meeting gluten-free requirements and demonstrating improved nutritional properties, as well as consumption properties, confirmed by surveys conducted on a group of consumers. Full article
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24 pages, 2753 KB  
Article
Towards a Biorefinery Processing Waste from Plantain Agro-Industry: Process Design and Techno-Economic Assessment of Single-Cell Protein, Natural Fibers, and Biomethane Production through Process Simulation
by James A. Gómez, Luis G. Matallana and Óscar J. Sánchez
Fermentation 2022, 8(11), 582; https://doi.org/10.3390/fermentation8110582 - 27 Oct 2022
Cited by 10 | Viewed by 5090
Abstract
The plantain agro-industry generates different residues in the harvest and post-harvest stages. Therefore, the design of processes for valorization is required. The aim of this work was to design and techno-economically evaluate the processes for the production of single-cell protein, natural fibers, and [...] Read more.
The plantain agro-industry generates different residues in the harvest and post-harvest stages. Therefore, the design of processes for valorization is required. The aim of this work was to design and techno-economically evaluate the processes for the production of single-cell protein, natural fibers, and biomethane from plantain residues by process simulation in the framework of the design of a future biorefinery for valorization of these residues. The processes were simulated using SuperPro Designer. The scale size was calculated at 1,267,071 tons for the processing of plantain lignocellulosic waste (pseudostems) and 3179 tons for the processing of starchy waste (rejected unripe plantain fruits). The results obtained suggest that the best alternative for the valorization of plantain residues corresponded to the production of natural fibers, with a net present value of $29,299,000. This work shows that waste from the plantain agro-industry exhibits high potential as a feedstock for the production of value-added products. In addition, the process flowsheets simulated in this work can be integrated into the basic design of a biorefinery processing plantain waste. Full article
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15 pages, 2808 KB  
Article
Development and Characterization of Plantain (Musa paradisiaca) Flour-Based Biopolymer Films Reinforced with Plantain Fibers
by Ramiro Venegas, Andres Torres, Ana M. Rueda, Maria A. Morales, Mary J. Arias and Alicia Porras
Polymers 2022, 14(4), 748; https://doi.org/10.3390/polym14040748 - 15 Feb 2022
Cited by 26 | Viewed by 6973
Abstract
Agroindustrial wastes are a cheap and abundant source of natural fibers and macromolecules that can be used in the manufacturing of biocomposites. This study presents the development and thermo-mechanical characterization of a bio-composite film (TPF/PF), made of thermoplastic banana flour (TPF) matrix and [...] Read more.
Agroindustrial wastes are a cheap and abundant source of natural fibers and macromolecules that can be used in the manufacturing of biocomposites. This study presents the development and thermo-mechanical characterization of a bio-composite film (TPF/PF), made of thermoplastic banana flour (TPF) matrix and plantain fibers (PF). Fabricated materials were characterized by physical analysis, chemical composition, Fourier-transformed spectroscopy (FTIR), thermal analysis (TGA), mechanical analysis, and scanning electronic microscopy (SEM). The physical analysis showed that TPF and PF have a low density and high affinity to water resulting in a lightweight, renewable, and biodegradable TPF/PF composite. The chemical composition and spectra analysis of the fiber showed that PF is a potential candidate for reinforcing composites due to its high α-cellulose and low lignin content. The thermal analysis determined that TPF degrades at a lower temperature than PF, therefore the matrix sets the processing temperature for TPF/PF composite films. The mechanical test showed an improvement in the tensile properties of the composite in comparison to neat TPF. Tensile strength and Young’s modulus were improved by 345% and 1196%, respectively, when PF fibers was used. Good bonding and mechanical interlocking of PF to the TPF were identified by SEM. Therefore, potential biocomposites can be developed using natural fibers and thermoplastic starches obtained from plantain agroindustrial wastes. Full article
(This article belongs to the Special Issue Bio-Based Materials: Contribution to Advancing Circular Economy)
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