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Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models

The moisture sorption isotherm of pea starch films prepared with various glycerol contents as plasticizer was investigated at different storage relative humidities (11%–96% RH) and at 5 ± 1, 15 ± 1, 25 ± 1 and 40 ± 1 °C by using gravimetric method. The results showed that the equilibrium moisture co...

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Autores principales: Saberi, Bahareh, Vuong, Quan V., Chockchaisawasdee, Suwimol, Golding, John B., Scarlett, Christopher J., Stathopoulos, Costas E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5224579/
https://www.ncbi.nlm.nih.gov/pubmed/28231096
http://dx.doi.org/10.3390/foods5010001
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author Saberi, Bahareh
Vuong, Quan V.
Chockchaisawasdee, Suwimol
Golding, John B.
Scarlett, Christopher J.
Stathopoulos, Costas E.
author_facet Saberi, Bahareh
Vuong, Quan V.
Chockchaisawasdee, Suwimol
Golding, John B.
Scarlett, Christopher J.
Stathopoulos, Costas E.
author_sort Saberi, Bahareh
collection PubMed
description The moisture sorption isotherm of pea starch films prepared with various glycerol contents as plasticizer was investigated at different storage relative humidities (11%–96% RH) and at 5 ± 1, 15 ± 1, 25 ± 1 and 40 ± 1 °C by using gravimetric method. The results showed that the equilibrium moisture content of all films increased substantially above a(w) = 0.6. Films plasticized with glycerol, under all temperatures and RH conditions (11%–96%), adsorbed more moisture resulting in higher equilibrium moisture contents. Reduction of the temperature enhanced the equilibrium moisture content and monolayer water of the films. The obtained experimental data were fitted to different models including two-parameter equations (Oswin, Henderson, Brunauer–Emmitt–Teller (BET), Flory–Huggins, and Iglesias–Chirife), three-parameter equations Guggenhiem–Anderson–deBoer (GAB), Ferro–Fontan, and Lewicki) and a four-parameter equation (Peleg). The three-parameter Lewicki model was found to be the best-fitted model for representing the experimental data within the studied temperatures and whole range of relative humidities (11%–98%). Addition of glycerol increased the net isosteric heat of moisture sorption of pea starch film. The results provide important information with estimating of stability and functional characteristics of the films in various environments.
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spelling pubmed-52245792017-02-15 Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models Saberi, Bahareh Vuong, Quan V. Chockchaisawasdee, Suwimol Golding, John B. Scarlett, Christopher J. Stathopoulos, Costas E. Foods Article The moisture sorption isotherm of pea starch films prepared with various glycerol contents as plasticizer was investigated at different storage relative humidities (11%–96% RH) and at 5 ± 1, 15 ± 1, 25 ± 1 and 40 ± 1 °C by using gravimetric method. The results showed that the equilibrium moisture content of all films increased substantially above a(w) = 0.6. Films plasticized with glycerol, under all temperatures and RH conditions (11%–96%), adsorbed more moisture resulting in higher equilibrium moisture contents. Reduction of the temperature enhanced the equilibrium moisture content and monolayer water of the films. The obtained experimental data were fitted to different models including two-parameter equations (Oswin, Henderson, Brunauer–Emmitt–Teller (BET), Flory–Huggins, and Iglesias–Chirife), three-parameter equations Guggenhiem–Anderson–deBoer (GAB), Ferro–Fontan, and Lewicki) and a four-parameter equation (Peleg). The three-parameter Lewicki model was found to be the best-fitted model for representing the experimental data within the studied temperatures and whole range of relative humidities (11%–98%). Addition of glycerol increased the net isosteric heat of moisture sorption of pea starch film. The results provide important information with estimating of stability and functional characteristics of the films in various environments. MDPI 2015-12-24 /pmc/articles/PMC5224579/ /pubmed/28231096 http://dx.doi.org/10.3390/foods5010001 Text en © 2015 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Saberi, Bahareh
Vuong, Quan V.
Chockchaisawasdee, Suwimol
Golding, John B.
Scarlett, Christopher J.
Stathopoulos, Costas E.
Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models
title Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models
title_full Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models
title_fullStr Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models
title_full_unstemmed Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models
title_short Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models
title_sort water sorption isotherm of pea starch edible films and prediction models
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5224579/
https://www.ncbi.nlm.nih.gov/pubmed/28231096
http://dx.doi.org/10.3390/foods5010001
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