Potential of Lauryl Gallate as Stability and Recyclability Improver of Poly (Butylene succinate-co-adipate)

被引:0
作者
Damiano Rossi
Miriam Cappello
Sara Filippi
Patrizia Cinelli
Maurizia Seggiani
机构
[1] University of Pisa,Department of Civil and Industrial Engineering
来源
Journal of Polymers and the Environment | 2024年 / 32卷
关键词
Poly(butylene succinate-; -adipate); PBSA; Lauryl Gallate; Antioxidant; Recycling; Thermal Oxidation;
D O I
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中图分类号
学科分类号
摘要
In the present study, Lauryl Gallate (LG), a natural antioxidant, was used to improve polymer thermal stability and recyclability of a biodegradable polyester as poly(butylene succinate-co-adipate) (PBSA). Neat PBSA and PBSA/LG (0.5 wt% LG) blends were processed by melt extrusion and subjected to multiple consecutive extrusion cycles at 170 °C to prevent the occurrence of thermo-oxidative radical degradation processes of the polymer. Thermal, rheological, morphological, FTIR, and GPC analyses showed the beneficial effect of LG in delaying PBSA thermo-oxidative degradation, reducing polymer fragmentation at low-mid molecular weights compared to the reprocessed virgin PBSA. The use of LG limits the drop of both complex viscosity η* and zero-shear stress viscosity η0 as well as the reduction of crystallinity degree and the enhancement of melt flow rate (MFR). This molecular degradation produces low molecular weight polymer fractions and oligomers that solely affect molten PBSA fluidity. In the presence of 0.5 wt% of LG, the processability of PBSA doubles from six (neat PBSA) up to twelve extrusions until presenting the first signs of degradation of the molten polymer while preserving the mechanical characteristics at the solid state. These mechanical properties remain equivalent to the neat PBSA (Young’s modulus 0.33 GPa, yield strength 19.2 MPa, stress at break 24.4 MPa, and elongation at break 350%). Consequently, LG can be successfully employed as a natural PBSA stabilizer to extend the polymer lifecycle and contribute to the circular economy practice within the processing and manufacturing industry, particularly in the field of PBSA agricultural applications and injection moulded disposable products.
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页码:1202 / 1216
页数:14
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共 204 条
[1]  
Evode N(2021)Plastic waste and its management strategies for environmental sustainability Case Stud Chem Environ Eng 6 100404-529
[2]  
Qamar SA(2022)Biodegradable plastic applications towards sustainability: a recent innovations in the green product Clean Eng Technol 32 501-12
[3]  
Bilal M(2012)Polyethylene and biodegradable mulches for agricultural applications: a review Agron Sustain Dev 10 1-23
[4]  
Barceló D(2018)Molecular and supramolecular changes in polybutylene succinate (PBS) and polybutylene succinate adipate (PBSA) copolymer during degradation in various environmental conditions Polym (Basel) 14 1-1915
[5]  
Iqbal HMN(2022)Brief review of poly (Butylene Succinate) (PBS) and its main copolymers: synthesis, blends, composites, biodegradability, and applications Polym (Basel) 132 101579-26
[6]  
Moshood TD(2022)Poly (Butylene Succinate) (PBS): materials, processing, and industrial applications Prog Polym Sci 32 1905-424
[7]  
Nawanir G(2011)Green composites: an overview Polym Polym Compos 10 19-403
[8]  
Mahmud F(2002)Sustainable bio-composites from renewable resources: opportunities and challenges in the green materials world J Polym Environ 16 570-3388
[9]  
Mohamad F(2023)Wood residue-derived biochar as a low-cost, lubricating filler in poly (Butylene Succinate-Co-Adipate) biocomposites Mater (Basel) 59 416-177
[10]  
Ahmad MH(2017)Properties of biodegradable poly (Butylene Succinate) (PBS) composites with carbon black Polym Sci - Ser A 29 392-24304