Literature DB >> 35614713

Tough and Sustainable Graft Block Copolymer Thermoplastics.

Jiuyang Zhang1, Tuoqi Li2, Alexander M Mannion2, Deborah K Schneiderman2, Marc A Hillmyer2, Frank S Bates2.   

Abstract

Fully sustainable poly[HPMC-g-(PMVL-b-PLLA)] graft block copolymer thermoplastics were prepared from hydroxypropyl methylcellulose (HPMC), β-methyl-δ-valerolactone (MVL), and l-lactide (LLA) using a facile two-step sequential addition approach. In these materials, rubbery PMVL functions as a bridge between the semirigid HPMC backbone and the hard PLLA end blocks. This specific arrangement facilitates PLLA crystallization, which induces microphase separation and physical cross-linking. By changing the backbone molar mass or side chain composition, these thermoplastic materials can be easily tailored to access either plastic or elastomeric behavior. Moreover, the graft block architecture can be utilized to overcome the processing limitations inherent to linear block polymers. Good control over molar mass and composition enables the deliberate design of HPMC-g-(PMVL-b-PLLA) samples that are incapable of microphase separation in the melt state. These materials are characterized by relatively low zero shear viscosities in the melt state, an indication of easy processability. The simple and scalable synthetic procedure, use of inexpensive and renewable precursors, and exceptional rheological and mechanical properties make HPMC-g-(PMVL-b-PLLA) polymers attractive for a broad range of applications.

Entities:  

Year:  2016        PMID: 35614713     DOI: 10.1021/acsmacrolett.6b00091

Source DB:  PubMed          Journal:  ACS Macro Lett        ISSN: 2161-1653            Impact factor:   6.903


  1 in total

1.  In situ formation of PLA-grafted alkoxysilanes for toughening a biodegradable PLA stereocomplex thin film.

Authors:  Jieun Jeong; Muhammad Ayyoob; Ji-Heung Kim; Sung Woo Nam; Young Jun Kim
Journal:  RSC Adv       Date:  2019-07-15       Impact factor: 4.036

  1 in total

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