| Literature DB >> 35215741 |
Vandana Chaudhary1, Sneh Punia Bangar2, Neha Thakur3, Monica Trif4.
Abstract
Due to their complete non-biodegradability, current food packages have resulted in major environmental issues. Today's smart consumer is looking for alternatives that are environmentally friendly, durable, recyclable, and naturally rather than synthetically derived. It is a well-established fact that complete replacement with environmentally friendly packaging materials is unattainable, and bio-based plastics should be the future of the food packaging industry. Natural biopolymers and nanotechnological interventions allow the creation of new, high-performance, light-weight, and environmentally friendly composite materials, which can replace non-biodegradable plastic packaging materials. This review summarizes the recent advancements in smart biogenic packaging, focusing on the shift from conventional to natural packaging, properties of various biogenic packaging materials, and the amalgamation of technologies, such as nanotechnology and encapsulation; to develop active and intelligent biogenic systems, such as the use of biosensors in food packaging. Lastly, challenges and opportunities in biogenic packaging are described, for their application in sustainable food packing systems.Entities:
Keywords: biodegradable; biogenic; food; material; smart packaging
Year: 2022 PMID: 35215741 PMCID: PMC8878437 DOI: 10.3390/polym14040829
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Schematic categorization of biogenic polymers.
Properties of naturally derived biogenic polymers used in food packaging.
| Biogenic Polymer | Monomeric Unit | Structure of Monomeric Unit | Properties |
|---|---|---|---|
| Cellulose/Nanocellulose | D-glucose | Most abundant biopolymer on earth. | |
| Chitin | N- acetylglucosamine | Derived from the exoskeletons of crustaceans. | |
| Chitosan | N-acetyl-D-glucosamine | Semicrystalline and easily soluble in organic acids such as malic, lactic, etc. [ | |
| Carrageenan | Sulfated d-galactose and l-anhydrogalactose | Obtained from the red edible seaweed family also known as Irish Moss [ | |
| Starch | Glucose monomers joined in α 1,4 linkages | Native starch polymers are tasteless and odorless, semipermeable to gas, water, and flavoring components [ |
Properties of synthetically-derived biogenic polymers used in food packaging.
| Biogenic Polymer | Monomeric Unit | Structure of Monomeric | Properties |
|---|---|---|---|
| Polylactic acid (PLA)/Polylactide | Lactic acid/lactide | Non-toxic, biodegradable, aliphatic polyester [ | |
| Poly(butylene succinate) (PBS) | Succinic acid | Aliphatic polyester [ | |
| Polybutylene succinate adipate (PBSA) | Succinic acid, adipic acid | Semi-crystalline polyester produced by co-condensation of succinic and adipate acid with 1-4-butanediol. | |
Classification of various biosensors, along with their key features.
| Classification | Biosensor | Key Features | Reference |
|---|---|---|---|
| Bioreceptors Based | Enzyme biosensors | Enzyme based microreactors are developed that interact with the food environment and detect changes. | [ |
| Antibody biosensors | Antibody layer in the sensor is used to recognize the target, often a pathogenic or spoilage microbe and convert it into a signal. | [ | |
| Aptamer biosensors | Aptamers can be defined as a type of oligonucleotides that have high specificity and affinity for the target organisms in food that cause spoilage. Biosensors based on aptamers have great potential as a tool for pathogen detection in food. | [ | |
| Whole cell biosensors | Living cells as biosensors offer features such as a easy fabrication process and flexibility of detection stratagems. | [ | |
| Nano biosensors | Magnetic nano-sensors can be useful in detecting various residues (such as pesticide, antibiotics), additives (antioxidants) or analytes (bisphenol A, aflatoxins) in food in extremely low quantities. | [ | |
| Transducer Based | Electrochemical biosensors | They can be further categorized into amperometric, potentiometric, voltammetric, conductometric, and impedimetric. Low cost, ease of operation, portability, simplicity, and easy miniaturization are some of the advantages of electrochemical biosensors. Recent works showed that they work best with two-dimensional nanomaterials, as these enhance the sensitivity, repeatability, and specificity of the electrochemical biosensors. | [ |
| Optical biosensors | This works on the principle of a signal generation proportionate to the concentration of analyte in a sample. They enable screening of a plethora of analytes or compounds and the use nanostructured materials for assessment of optically active materials. They enable smart colorimetric detection, making the food package active and smart. The low cost of fabrication is one of the striking features of optical biosensors. | [ | |
| Electronic biosensors | Biosensors that act as electronic tongues or noses have been developed based on pattern recognition principles, and act as freshness indicators for various fruits and vegetables. Observation by the naked eye is a huge advantage. | [ | |
| Gravimetric biosensors | They are also known as mass-based biosensors. These produce measurable signals upon detecting a change in mass on the sensor surface. | [ | |
| Acoustic biosensors | Acoustic biosensors are based on the ability of the target molecule to bind and vibrate at the frequency of the piezoelectric crystals used in the sensors. The physical attributes of the acoustic waves thus generated are analyzed, and inferences about the analyte and its concentration are drawn. | [ | |
| Technology-Based | Nano biosensors | Nanomaterials offer great electrochemical, optical, mechanical, magnetic, and conductive properties. Examples include nanowires, quantum dots, and nanotubes that amplify the initial signal and lower detection limits. | [ |
| SRP biosensors | Stimuli-responsive polymers (SRPs) respond to the changes in the food environment or external stimuli such as pH, enzymes, etc., and aid in detecting spoilage in food packaging systems. | [ | |
| Chip based biosensors | These act as promising point of care (POC) devices, enabling target detection. Liquid crystal technology is used for the development of chip-based biosensors in food. | [ | |
| Electrometers | These come in handy when monitoring the real-time quality or estimating the perishability of food material. The dielectric properties of biopolymers aid in analysis based upon electrical conductivity and electrets state, and the peaks thus obtained are studied. | [ | |
| Detection system based | Optical biosensors | They ensure food safety owing to their application in POC devices. These sensors are quick, competent, and dependable. | [ |
| Electrical biosensors | |||
| Electronic biosensors | |||
| Thermal biosensors | |||
| Magnetic biosensors | |||
| Mechanical biosensors |