TY - JOUR
T1 - Controlled release of volatile (-)-menthol in nanoporous silica materials
AU - Zhang, Jun
AU - Yu, Meihua
AU - Yuan, Pei
AU - Lu, Gaoqing
AU - Yu, Chengzhong
PY - 2011/12
Y1 - 2011/12
N2 - In this work, a series of nanoporous silica materials have been prepared as adsorbents for volatile (-)-menthol, a molecule widely used in food, pharmacy, and cosmetics. The isothermal release properties of (-)-menthol have been investigated and correlated with the structural parameters of nanoporous absorbents. A rotary evaporation method is used to effectively load (-)-menthol into the nanopores of adsorbents and to prevent the whisker growth during the adsorption. It is demonstrated that the pore size, structure, wall thickness and surface functionality of nanoporous adsorbents are four important parameters to influence the isothermal release of (-)-menthol. By tuning these parameters of nanoporous silica adsorbents, controlled release of (-)-menthol can be achieved. A vesicular silica material with thick wall and hydrophobic functional groups is shown to possess the slowest release performance. Our contribution provides important knowledge for the future applications of nanoporous silica materials in pharmacy and cosmetics.
AB - In this work, a series of nanoporous silica materials have been prepared as adsorbents for volatile (-)-menthol, a molecule widely used in food, pharmacy, and cosmetics. The isothermal release properties of (-)-menthol have been investigated and correlated with the structural parameters of nanoporous absorbents. A rotary evaporation method is used to effectively load (-)-menthol into the nanopores of adsorbents and to prevent the whisker growth during the adsorption. It is demonstrated that the pore size, structure, wall thickness and surface functionality of nanoporous adsorbents are four important parameters to influence the isothermal release of (-)-menthol. By tuning these parameters of nanoporous silica adsorbents, controlled release of (-)-menthol can be achieved. A vesicular silica material with thick wall and hydrophobic functional groups is shown to possess the slowest release performance. Our contribution provides important knowledge for the future applications of nanoporous silica materials in pharmacy and cosmetics.
KW - (-)-Menthol
KW - Isothermal release
KW - Mesoporous
KW - Silica
KW - Vesicle
UR - https://www.scopus.com/pages/publications/84856253594
U2 - 10.1007/s10847-011-9996-4
DO - 10.1007/s10847-011-9996-4
M3 - 文章
AN - SCOPUS:84856253594
SN - 0923-0750
VL - 71
SP - 593
EP - 602
JO - Journal of Inclusion Phenomena and Macrocyclic Chemistry
JF - Journal of Inclusion Phenomena and Macrocyclic Chemistry
IS - 3-4
ER -