The influence of mild CO treatment on thermal properties of poly(L-lactic acid) (PLLA) is discussed in this article. A slowly crystallizing PLLA with 4% D-isomer was treated with CO at room temperature and moderate pressures (up to 6.0 MPa) for short times, not longer than 20 min. These mild treatments are sufficient to develop ?-form (PLLA/CO complex), which evolves to ?"-mesophase after desorption of CO. The amount of mesophase depends on the pressure of CO and the sorption times, and significantly affects the thermal properties of PLLA. Although the mesophase melts immediately above the glass transition, it affects subsequent cold crystallization. The influence of CO sorption time and pressure on the cold crystallization kinetics of PLLA is quantified here, and it is found that only a few minutes of treatment with low-pressure CO is sufficient to enhance the crystallization rate. After longer exposure to CO, ?-crystals also develop, especially under high CO pressure, hence proper adjustment of these parameters can allow tuning the structure and thermal properties of PLLA. The results demonstrate the possibility of producing CO-induced mesophase at room temperature using very short sorption times, thus introducing a fast, green and cost-effective way to tailor the crystallization kinetics of PLLA.
The effect of mild CO2 treatment on thermal properties of poly(L-lactic acid): An experimental study
Longo A;Di Lorenzo ML
2022
Abstract
The influence of mild CO treatment on thermal properties of poly(L-lactic acid) (PLLA) is discussed in this article. A slowly crystallizing PLLA with 4% D-isomer was treated with CO at room temperature and moderate pressures (up to 6.0 MPa) for short times, not longer than 20 min. These mild treatments are sufficient to develop ?-form (PLLA/CO complex), which evolves to ?"-mesophase after desorption of CO. The amount of mesophase depends on the pressure of CO and the sorption times, and significantly affects the thermal properties of PLLA. Although the mesophase melts immediately above the glass transition, it affects subsequent cold crystallization. The influence of CO sorption time and pressure on the cold crystallization kinetics of PLLA is quantified here, and it is found that only a few minutes of treatment with low-pressure CO is sufficient to enhance the crystallization rate. After longer exposure to CO, ?-crystals also develop, especially under high CO pressure, hence proper adjustment of these parameters can allow tuning the structure and thermal properties of PLLA. The results demonstrate the possibility of producing CO-induced mesophase at room temperature using very short sorption times, thus introducing a fast, green and cost-effective way to tailor the crystallization kinetics of PLLA.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.