Methods for the preparation of polymer-templated core-shell nanoparticles include the steps of (a) preparing a cationic polymeric core material comprising polymeric micelles, and (b) coating the core material with a silica-comprising shell by depositing the shell onto the polymeric micelles from at least one silica precursor to form the core-shell nanoparticles. Compositions which include the core-shell nanoparticles are adapted to facilitate controlled delivery of at least one active agent into a system in response to controlled changes in the pH of the system.
1. A method for the preparation of polymer-templated core-shell nanoparticles comprising the steps of:
(a) preparing a cationic polymeric core material comprising polymeric micelles employing a quaternized polymer comprising the steps of
(i) preparing diblock copolymer micelles comprising poly[2-(diisopropylamino)ethyl methacrylate)-block-2-(dimethylamino)ethyl methacrylate]copolymer (PDPA-PDMA);
(ii) partially or fully quaternizing the tertiary amino groups of 2-(dimethylamino)ethyl methacrylate; and
(b) coating said core material with a shell comprising silica by depositing the shell onto the polymeric micelles from at least one silica precursor by stirring the core material with a silica precursor for between 10 and 60 minutes at 5 to 30° C. and a pH of between 6.2 and 9.0 to form the core-shell nanoparticles comprising silica shell having thickness of at least 5 nm.
2. The method as in claim 1 , wherein step (a) is practiced by preparing the polymeric core material by group transfer polymerisation or controlled radical polymerisation.
3. The method of claim 1 , wherein step (a) is practiced by controlling the degree of polymerisation of the PDPA-PDMA copolymer is controlled such that the mean degree of polymerisation of the at least one PDPA block falls in the range of 20-25.
4. A composition as claimed in claim 3 , wherein the degree of polymerisation of the PDPA-PDMA copolymer is such that the mean degree of polymerisation of the at least one PDMA block falls in the range of 65-70.
5. The method of claim 1 , wherein the nanoparticles formed by step (b) have an average specific size (g) of about 300 nm or less.
6. The method of claim 1 , wherein the nanoparticles formed by step (b) have an average particle size is in the region of from 10-100 nm.
7. The method of claim 1 , wherein the nanoparticles formed by step (b) have an anisotropic rod-like morphology.