Porous Coatings to Control Release Rates of Essential Oils to Generate an Atmosphere with Botanical Actives.
antimicrobial
evaporation
layers
linear driving force
packaging
Journal
Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929
Informations de publication
Date de publication:
15 Mar 2022
15 Mar 2022
Historique:
received:
20
02
2022
revised:
10
03
2022
accepted:
11
03
2022
entrez:
25
3
2022
pubmed:
26
3
2022
medline:
26
3
2022
Statut:
epublish
Résumé
Essential oils have been used in diverse areas such as packaging, agriculture and cosmetics, for their antimicrobial and pesticide activity. The organic volatile compounds of the essential oils are involved in its activity. Controlling their release helps to prolong their functionality. In this study, a functionalized calcium carbonate porous coating was employed to control the release of thyme and rosemary oil in a confined space. The release rate was evaluated at 7 °C and 23 °C, gravimetrically. It was shown that the capillary effect of the porous coating slowed down the release of the volatiles into the headspace compared to the bulk essential oil. A linear drive force model was used to fit the obtained data from both essential oils. The model showed that rosemary reached the asymptotic mass loss equilibrium faster than thyme. This result can be explained by the diverse composition and concentration of monoterpenoids between the two essential oils. Temperature and degree of loading also played important roles in the desorption of the essential oils. It was observed that at high degrees of loading and temperatures the desorption of essential oils was higher. The above-described technology could be used for applications related to food preservation, pest control among others.
Identifiants
pubmed: 35329607
pii: ma15062155
doi: 10.3390/ma15062155
pmc: PMC8951051
pii:
doi:
Types de publication
Journal Article
Langues
eng
Subventions
Organisme : Commission for Technology and Innovation
ID : 25176.1 PFLS-LS
Références
Front Bioeng Biotechnol. 2019 Dec 13;7:426
pubmed: 31921828
Indian J Pharm Sci. 2009 Nov;71(6):599-607
pubmed: 20376211
Int J Dermatol. 2012 Jul;51(7):790-5
pubmed: 22715822
Colloids Surf B Biointerfaces. 2020 Apr;188:110784
pubmed: 31935631
J Food Prot. 1989 Sep;52(9):665-667
pubmed: 31003289
J Sci Food Agric. 2019 Aug 30;99(11):5168-5175
pubmed: 31056749
J Food Sci. 2011 Nov-Dec;76(9):R164-77
pubmed: 22416718
Molecules. 2020 Mar 03;25(5):
pubmed: 32138320
Molecules. 2021 May 07;26(9):
pubmed: 34067007
J Nat Prod. 2018 Mar 23;81(3):679-690
pubmed: 29513526
Food Chem. 2021 May 1;343:128403
pubmed: 33268167
Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2012 Jan-Feb;4(1):16-30
pubmed: 21374827
Front Microbiol. 2012 Jan 25;3:12
pubmed: 22291693
Nat Mater. 2010 Feb;9(2):172-8
pubmed: 20010827
Anim Nutr. 2018 Jun;4(2):179-186
pubmed: 30140757
J Chem Soc. 1947 Oct;:1315-21
pubmed: 20272129
J Food Sci. 2014 Jul;79(7):R1231-49
pubmed: 24888440
Adv Drug Deliv Rev. 2021 Jul;174:425-446
pubmed: 33930490