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Block copolymers can be also used in solution form for the synthesis of nanowires.
Block copolymers can be used to synthesise different nanostructures due to their fitting size and shape.
Based on the arrangement of the blocks, the block copolymers can be of different types.
Block copolymers can be further useful in promoting long-range nanoparticle organization.
Block copolymers can be good compatibilizers in polymer blends, if tailored carefully.
The block copolymers can be used to produce metal nanoparticles because of their ability to reduce metal ions.
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The lower critical solution temperature (LCST) of the PVCL-based biocompatible block copolymer can be readily tuned by controlling the hydrophobicity of the block copolymers.
Targeted addition of a selective low-molar-mass solvent or relatively low-molecular-weight homopolymer to an ordered block copolymer can be used to preferentially swell one of the domains comprising the copolymer nanostructure and ultimately yield tunable transitions to morphologies with specific mechanical or spatial properties [3 8].
Remarkably, the influence of the PSMMA block copolymer on the improvement of the conductivity of the electro-devices was also assessed, demonstrating that the self-assembling ability of block copolymer can be beneficial to improve charge transfer in the fabricated electro-devices, thus representing relevant systems to be potentially developed for photovoltaic applications.
Nanoparticles with diameter ranging from 60 to 100 nm were also prepared from these mPEG-PLGA copolymers with varied molar mass of PEG (2k and 5k g/mol) and PLGA blocks (20k-160k g/mol), showing such block copolymer can be harnessed as drug delivery matrix in nanomedicine.
However, the self-assembly of block-copolymers can be seen as an analogue model for the development of wing scales [ 18],[ 42].
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