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An Edible Humidity Indicator That Responds to Changes in Humidity Mechanically AITranslate

Delft University of Technology; University of Groningen; Delft University of Technology; Marmara University; South China Normal University; Delft University of Technology; University of Utrecht
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Publisher: ACS
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Abstract AITranslate

Elevated humidity levels in medical, food, and pharmaceutical products may reduce the products’ shelf life, trigger bacterial growth, and even lead to complete spoilage. In this study, we report a humidity indicator that mechanically bends and rolls itself irreversibly upon exposure to high humidity conditions. The indicator is made of two food-grade polymer films with distinct ratios of a milk protein, casein, and a plasticizer, glycerol, that are physically attached to each other. Based on the thermogravimetric analysis and microstructural characterization, we hypothesize that the bending mechanism is a result of hygroscopic swelling and consequent counter diffusion of water and glycerol. Guided by this mechanism, we demonstrate that the rolling behavior, including response time and final curvature, can be tuned by the geometric dimensions of the indicator. As the proposed indicator is made of food-grade ingredients, it can be placed directly in contact with perishable products to report exposure to undesirable humidity inside the package, without the risk of contaminating the product or causing oral toxicity in case of accidental digestion, features that commercial inedible electronic and chemo-chromatic sensors cannot provide presently.

KeyWords AITranslate

Humidity indicator Intelligent tag Bestby date Edible Mechanical bending Rolling Caseinate film
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Basic Information:

DOI:https://doi.org/10.1021/acsapm.3c00344

Chinese Library Classification Number:

Citation Information:

Elevated humidity levels in medical, food, and pharmaceutical products may reduce the products’ shelf life, trigger bacterial growth, and even lead to complete spoilage. In this study, we report a humidity indicator that mechanically bends and rolls itself irreversibly upon exposure to high humidity conditions. The indicator is made of two food-grade polymer films with distinct ratios of a milk protein, casein, and a plasticizer, glycerol, that are physically attached to each other. Based on the thermogravimetric analysis and microstructural characterization, we hypothesize that the bending mechanism is a result of hygroscopic swelling and consequent counter diffusion of water and glycerol. Guided by this mechanism, we demonstrate that the rolling behavior, including response time and final curvature, can be tuned by the geometric dimensions of the indicator. As the proposed indicator is made of food-grade ingredients, it can be placed directly in contact with perishable products to report exposure to undesirable humidity inside the package, without the risk of contaminating the product or causing oral toxicity in case of accidental digestion, features that commercial inedible electronic and chemo-chromatic sensors cannot provide presently.

quote

GB/T 7714-2015 [1] Mengmeng Zhang, Abinaya Arunachalam, Hugo Perrin, et al. ACS Applied Polymer Materials, 2023(5). DOI:10.1021/acsapm.3c00344.
MLA [1] Mengmeng Zhang, et al., ACS Applied Polymer Materials, no. 5, 2023, https://doi.org/10.1021/acsapm.3c00344.
APA [1] Mengmeng Zhang, Abinaya Arunachalam, Hugo Perrin, Sevgi Polat, Jan Groenewold, Eduardo Mendes, & Hüseyin Burak Eral. (2023). ACS Applied Polymer Materials(5). https://doi.org/10.1021/acsapm.3c00344
IEEE [1] Mengmeng Zhang, Abinaya Arunachalam, Hugo Perrin, Sevgi Polat, Jan Groenewold, Eduardo Mendes, and Hüseyin Burak Eral, ACS Applied Polymer Materials, no. 5, 2023, doi: 10.1021/acsapm.3c00344. keywords: {Humidity indicator;Intelligent tag;Bestby date;Edible;Mechanical bending;Rolling;Caseinate film}