Preparation of an Intelligent pH Film Based on Biodegradable Polymers for Monitoring the Food Quality and Reducing the Microbial Contaminants

Author:

Subramanian Kumaran1ORCID,Balaraman Deivasigamani2,Kaliyaperumal Kumaravel3,Devi Rajeswari V.4,Balakrishnan K.5,Ronald Ross P.6,Perumal Elumalai7,Sampath Renuga Pugazhvendan8ORCID,Panangal Mani9,Swarnalatha Y.10,Velmurugan S.11ORCID

Affiliation:

1. Centre for Drug Discovery and Development, Sathyabama Institute of Science and Technology, Chennai, Tamil Nadu 600119, India

2. CAS in Marine Biology, Annamalai University, Cuddalore, Tamil Nadu, India

3. National Navel Orange Engineering Research Centre, School of Life Sciences, Gannan Normal University, Ganzhou, Jiangxi, China

4. Department of Biomedical Sciences, School of Biosciences and Technology VIT, Vellore, Tamil Nadu, India

5. Department of Zoology, Government Arts College (A), Karur, Tamil Nadu, India

6. Department of Zoology, Annamalai University, Annamalai Nagar, Cuddalore, Tamil Nadu, 608002, India

7. Departments of Pharmacology, Saveetha Dental College and Hospital, Chennai, Tamil Nadu, India

8. Department of Zoology, Annamalai University, Annamalai Nagar, Cuddalore, Tamilnadu 608002, India

9. Department of Biotechnology, Annai College of Arts & Science, Kumbakonam, Tamil Nadu, India

10. Department of Biotechnology, Sathyabama Institute of Science and Technology, Chennai, Tamil Nadu 600119, India

11. Department of Biology, School of Natural Science, Madawalabu University, Oromiya Region, Ethiopia

Abstract

Hydrogel refers to a three-dimensional cross-linked polymeric network made of synthetic or natural polymers that can hold water in its porous structure. The inclusion of hydrophilic groups in the polymer chains, such as amino, carboxyl, and hydroxyl groups, contributes to the hydrogel’s water-holding ability. At physiological temperature and pH, these polymeric materials do not dissolve in water, but they do swell significantly in aqueous media. Hydrogel can be manufactured out of almost any water-soluble polymer, and it comes in a variety of chemical compositions and bulk physical properties. Hydrogel can also be made in a variety of ways. Hydrogel comes in a variety of physical shapes, including slabs, microparticles, nanoparticles, coatings, and films. Due to its ease of manufacture and self-application in clinical and fundamental applications, hydrogel has been widely exploited as a drug carrier. Contact lenses, artificial corneas, wound dressing, suture coating, catheters, and electrode sensors are some of the biomedical applications of hydrogels. The pigment color changes were observed from colorless to pale pink followed by dark reddish-pink. Anthocyanin was produced in large quantities and tested using a UV-visible spectrophotometer. At 450–550 nm, the largest peak (absorbance) was detected, indicating the presence of anthocyanin. The FTIR analysis of this study shows the different stretches of bonds at different peaks: 2918.309 (-C-H alkane stretch), 2812.12 (-C-H aldehyde weak intensity), 192320.37/cm (C-O bend), 21915.50, 2029.08/cm (-C=C arene group), 1906.94/cm (=C-H aromatics), 1797.78/cm (=C-H), 1707.94 (-C=O ketene), 1579.70, 1382.96 (C-H alkane strong bend), 889.18/cm (C-H aromatics plane bend), and 412.77/cm (-C-CI strong bond). The spectra of the PVA/chitosan film depict the peak’s formation: 1571.88, 1529.55, 1500.62/cm (C-H alkene strong bend), 1492.90, 1483.26, 1467.83/cm (C-H alkene strong bond), 670.48, 443.63, 412.77/cm (-O-H carboxylic acids with great intensity), 1708.93 (-C=O ketone), and 1656.0/cm (alkenyl C=C stretch strong bond).

Publisher

Hindawi Limited

Subject

Inorganic Chemistry,Organic Chemistry,Biochemistry

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