
AJUNTAMENT D'ALCOI
Website

Generalitat Valenciana
Website

Ayuntamiento de Valencia
Website

Cicloplast
Website

Ayuntamiento de Onil
Website

Anarpla
Website

Ayuntamiento de Mislata
Website

nlWA, North London Waste Authority
Website

Ayuntamiento de Salinas
Website

Zicla
Website

Fondazione Ecosistemi
Website

PEFC
Website

ALQUIENVAS
Website

DIPUTACI� DE VAL�NCIA
Website

AYUNTAMIENTO DE REQUENA
Website

UNIVERSIDAD DE ZARAGOZA
Website

OBSERVATORIO CONTRATACIÓN PÚBLICA
Website

AYUNTAMIENTO DE PAIPORTA
Website

AYUNTAMIENTO DE CUENCA
Website

BERL� S.A.
Website

CM PLASTIK
Website

TRANSFORMADORES INDUSTRIALES ECOL�GICOS

INDUSTRIAS AGAPITO
Website

RUBI KANGURO
Website
If you want to support our LIFE project as a STAKEHOLDER, please contact with us: life-future-project@aimplas.es
In this section, you can access to the latest technical information related to the FUTURE project topic.
Thermal, crystalline and mechanical properties of flame retarded Poly(lactic acid) with a PBO-like small molecule - Phenylphosphonic Bis(2-aminobenzothiazole)
Poly(lactic acid) (PLA) has received considerable attention due to its potential to replace the petrochemically derived plastics. However, its high flammability and the tendency to melt drip during combustion has restricted its applications in many areas. This manuscript reports the synthesis, characterization, and application of PBO-like small molecule additive flame retardant (FR) - phenylphosphonic bis(2-aminobenzothiazole) (P-ABZT) for bioplastic PLA. P-ABZT was incorporated into PLA by the combinatory solvent mixing and the compression molding approaches, and its FR, crystalline and mechanical properties were investigated. Fourier transform infrared (FTIR), 1H, 13C, and 31P NMR confirmed the success of the synthetic process while thermogravimetric analysis (TGA) showed improved thermal stability and higher char yield after phosphorous was introduced. Cone calorimeter test demonstrated substantial reductions in peak heat release rate (PHRR???50%), total heat released (THR???37%), average effective heat of combustion (AEHC???31%), peak CO and CO2 produced (PCOP???60.4%, PCO2P???31%) with just 3% P-ABZT loading. The limiting oxygen index (LOI) improved to 32.4% whilst a V-0 rating was attained in the UL-94 vertical burning test. Substantial reductions in pyrolysis gaseous products were obtained by P-ABZT/PLA composites compared to neat PLA in the TG-IR study. The Young's modulus, tensile strength, and elongation at break of PLA were not compromised with 1% P-ABZT loading. SEM and Raman spectroscopy showed improved char yield and quality due to the condensed and gas phase inhibition by P-ABZT. The low FR loading coupled with the improved FR performance indicates that P-ABZT is an excellent and economical FR for PLA.

» Author: Benjamin Tawiah, Bin Yu, Anthony C.Y. Yuen, Richard K.K. Yuen, John H. Xin, Bin Fei
» Reference: 10.1016/j.polymdegradstab.2019.03.002
» Publication Date: 08/03/2019
C/ Gustave Eiffel, 4
(València Parc Tecnològic) - 46980
PATERNA (Valencia) - SPAIN
(+34) 96 136 60 40
Project Management department - Sustainability and Industrial Recovery
life-future-project@aimplas.es
