Keyword search (4,163 papers available)

"microfluidics" Keyword-tagged Publications:

Title Authors PubMed ID
1 Microfluidic Liquid Biopsy Minimally Invasive Cancer Diagnosis by Nano-Plasmonic Label-Free Detection of Extracellular Vesicles: Review Neriya Hegade KP; Bhat RB; Packirisamy M; 40650129
ENCS
2 An Automated Single-Cell Droplet-Digital Microfluidic Platform for Monoclonal Antibody Discovery Ahmadi F; Tran H; Letourneau N; Little SR; Fortin A; Moraitis AN; Shih SCC; 38441226
BIOLOGY
3 Measuring prion propagation in single bacteria elucidates a mechanism of loss Jager K; Orozco-Hidalgo MT; Springstein BL; Joly-Smith E; Papazotos F; McDonough E; Fleming E; McCallum G; Yuan AH; Hilfinger A; Hochschild A; Potvin-Trottier L; 37738299
PHYSICS
4 An electrochemical aptasensor for Δ9-tetrahydrocannabinol detection in saliva on a microfluidic platform Kékedy-Nagy L; Perry JM; Little SR; Llorens OY; Shih SCC; 36549107
BIOLOGY
5 Microfluidics for long-term single-cell time-lapse microscopy: Advances and applications Allard P; Papazotos F; Potvin-Trottier L; 36312536
BIOLOGY
6 Microfluidics in smart packaging of foods Pou KRJ; Raghavan V; Packirisamy M; 36192908
ENCS
7 Microfluidic Platforms for the Isolation and Detection of Exosomes: A Brief Review Raju D; Bathini S; Badilescu S; Ghosh A; Packirisamy M; 35630197
ENCS
8 Numerical and Experimental Validation of Mixing Efficiency in Periodic Disturbance Mixers López RR; Sánchez LM; Alazzam A; Burnier JV; Stiharu I; Nerguizian V; 34577745
ENCS
9 Magnetic particle based liquid biopsy chip for isolation of extracellular vesicles and characterization by gene amplification Bathini S; Pakkiriswami S; Ouellette RJ; Ghosh A; Packirisamy M; 34517262
ENCS
10 Microfluidic Shear Processing Control of Biological Reduction Stimuli-Responsive Polymer Nanoparticles for Drug Delivery. Huang Y, Jazani AM, Howell EP, Reynolds LA, Oh JK, Moffitt MG 33455300
CHEMBIOCHEM
11 Controlled Microfluidic Synthesis of Biological Stimuli-Responsive Polymer Nanoparticles. Huang Y, Moini Jazani A, Howell EP, Oh JK, Moffitt MG 31820915
CHEMBIOCHEM
12 One Cell, One Drop, One Click: Hybrid Microfluidics for Mammalian Single Cell Isolation. Samlali K, Ahmadi F, Quach ABV, Soffer G, Shih SCC 32705796
BIOLOGY
13 Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer. López RR, Ocampo I, Sánchez LM, Alazzam A, Bergeron KF, Camacho-León S, Mounier C, Stiharu I, Nerguizian V 32106424
ENCS
14 Lab-On-A-Chip for the Development of Pro-/Anti-Angiogenic Nanomedicines to Treat Brain Diseases. Subramaniyan Parimalam S, Badilescu S, Sonenberg N, Bhat R, Packirisamy M 31817343
ENCS
15 Dielectrophoresis Multipath Focusing of Microparticles through Perforated Electrodes in Microfluidic Channels. Alazzam A, Al-Khaleel M, Riahi MK, Mathew B, Gawanmeh A, Nerguizian V 31394810
ENCS

 

Title:Microfluidics in smart packaging of foods
Authors:Pou KRJRaghavan VPackirisamy M
Link:https://pubmed.ncbi.nlm.nih.gov/36192908/
DOI:10.1016/j.foodres.2022.111873
Publication:Food research international (Ottawa, Ont.)
Keywords:Active packagingFood qualityFood safetyIntelligent packagingMicrofluidicsSmart packaging
PMID:36192908 Category: Date Added:2022-10-04
Dept Affiliation: ENCS
1 Department of Bioresource Engineering, McGill University, Sainte-Anne-de-Bellevue, Montreal, Quebec H9X 3V9, Canada. Electronic address: jolvis.pou@mail.mcgill.ca.
2 Department of Bioresource Engineering, McGill University, Sainte-Anne-de-Bellevue, Montreal, Quebec H9X 3V9, Canada.
3 Optical-Bio Microsystems Laboratory, Micro-Nano-Bio Integration Center, Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, Montreal, Quebec H3G 1M8, Canada.

Description:

The increasing trend in ensuring safe and quality foods necessitates the monitoring of food products throughout the food supply chain. Food packaging is an indispensable process as it provides various functions such as containment, protection, convenience, and communication. The development of innovative packaging systems is required to ensure foods are microbiologically, chemically, and physically safe for consumption. In recent years, smart food packaging technologies namely intelligent and active packaging methods have become popular in the food packaging industry. However, in many cases, these smart packaging systems have not been adopted for large commercial-scale production. Development of rapid, sensitive, portable, user-friendly, and cost-effective food safety and quality analytical devices are required to meet both consumer and regulatory demands. Microfluidic technology has become a powerful tool as an alternative method to conventional laboratory-based analytical systems. The applications of microfluidic techniques in monitoring the safety and quality of a packaged food product are promising and rapidly advancing. Several studies have exhibited the development of microfluidic devices for smart food packaging such as time-temperature indicators, critical temperature indicators, food microorganism sensors, food quality detectors, and active food packaging. The future of food packaging lies in smart packaging technology which can function more than just protection and containment. This review focuses on the basic concepts of microfluidic technology and its application on intelligent and active packaging of food products and crystal ball gazing the future perspectives of this technology in food industry.





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