0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Detection Methods Environmental Sources Sign in to save

Poly(lactic-<i>co</i>-glycolic acid) Networks with Dynamic Covalent Bonds: Synthesis and Characterization

ACS Applied Polymer Materials 2023 2 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 30 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Eva M. Eger, Seema Agarwal Eva M. Eger, Seema Agarwal Eva M. Eger, Seema Agarwal Seema Agarwal Eva M. Eger, Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal Seema Agarwal

Summary

Researchers synthesized a biodegradable poly(lactic-co-glycolic acid) network with dynamic chemical bonds that degrade under environmental conditions, making it a candidate to replace microplastic-generating polyolefins in packaging and agriculture. The study characterizes its thermal and mechanical properties for practical applications.

Poly(lactic-co-glycolic acid) (PLGA) is an aliphatic polyester that degrades under environmental conditions making it interesting for replacing microplastic creating polyolefins in packaging and agricultural applications. However, linear PLGA exhibits unfavorable thermomechanical properties for use. Therefore, synthetic aspects, characterization, and reprocessing ability of PLGA in the form of dynamic covalent networks are studied in the present work. The dynamic covalent networks were synthesized from short-chain four-armed star-shaped PLGA with hydroxy end groups and 4,4′-methylene diphenyl diisocyanate as a cross-linker. Tin octanoate was used as a catalyst to promote the associative exchange reactions at elevated temperatures. The synthesized networks with dynamic bonding and debonding are insoluble in common organic solvents, have enhanced the thermomechanical properties, and have maintained the possibility of thermal reprocessing and recycling like thermoplastics.

Sign in to start a discussion.

Share this paper