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Developing efficient and accurate quantitative analysis methods for plastic blends holds significant value for resource recycling and environmental monitoring. Mid-infrared (MIR) spectroscopy, combined with chemometric techniques, has demonstrated excellent performance in plastic blend quantification. However, obtaining mid-infrared spectral data for a large number of plastic blends to calibrate the model remains challenging. This study proposes an innovative approach that utilizes pure plastic MIR spectra and the Beer-Lambert law to generate virtual plastic blend spectra. Four experimental groups (A-D) were designed, incorporating both real and virtual spectra to systematically evaluate the method's effectiveness. Experiment group A established a baseline model using real spectra, while experiment groups B, C, and D respectively validated the applicability and generalization capability of models based on virtual spectra, as well as their potential applications in MIR hyperspectral imaging (MIR-HSI), respectively. The study further explores feature band selection, model construction, evaluation, and interpretation. The results demonstrate that this method can efficiently predict the mass percentages of components in ternary plastic blends. In experimental group C, partial least squares regression (PLSR), one-dimensional convolutional neural network (CNN1D), and two-dimensional convolutional neural network based on Gramian Angular Field (GAF-CNN2D) models-trained on 208 virtual plastic blend spectra-were employed to predict the mass percentages of 66 ternary plastic blends composed of polyethylene (PE), polypropylene (PP), and polystyrene (PS). The prediction coefficients of determination (R) reached 0.9872, 0.9879, and 0.9944, respectively, indicating exceptional predictive accuracy. Experimental group D further demonstrated that, even under Gaussian noise interference and limited spectral range, the strategy of fusing mid-wave infrared and long-wave infrared bands allowed the PLSR and GAF-CNN2D models to maintain high performance in predicting the mass percentages of 66 ternary blends of PE, PP, and PS, with R values of 0.9852 and 0.9895, respectively. This suggests that the proposed method holds potential for applications in MIR-HSI and is promising for real-time online analysis. Finally, this study proposes a more widely applicable and optimized quantitative analysis application scheme based on virtual plastic blend spectra, aiming to enable rapid and precise determination of unknown plastic blends.
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http://dx.doi.org/10.1016/j.talanta.2025.128006 | DOI Listing |
Mater Horiz
September 2025
College of Polymer Science and Engineering, Sichuan University, State Key Laboratory of Advanced Polymer Materials, Chengdu, 610065, Sichuan, China.
Mechanical stimuli-responsive shape transformations, exemplified by mimosa leaves, are widespread in nature, yet remain challenging to realize through facile fabrication in synthetic morphing materials. Herein, we demonstrate stretch-activated shape-morphing enabled by an elastic-plastic bilayer structure assembled dynamic crosslinking. Through dioxaborolane metathesis, a dynamic, crosslinked polyolefin elastomer (POEV) with elasticity and a co-crosslinked POE/paraffin wax blend (POE/PW-V) with tunable plasticity are prepared.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
School of Material and Chemical Engineering, Zhengzhou University of Light Industry, Zhengzhou, 450000, China.
With growing public attention to environmental issues and sustainable development, biodegradable bio-based plastics have attracted widespread interest. This study reveals the chemical-physical synergistic regulation mechanism of biodegradable PLA/PBAT blends through the synergistic modification of epoxidized natural rubber (ENR) and epoxy chain extender (ADR). Interfacial interaction analysis shows that PBAT tends to encapsulate ENR to form aggregates.
View Article and Find Full Text PDFFood Res Int
November 2025
Food Technology and Nutrition, School of Science, RMIT University, Melbourne 3083, VIC, Australia.
The interactions between ethylcellulose (EC) and waxes in multicomponent oleogel systems are underexplored. This study investigated the structural, functional, and physiochemical properties of rice bran oil (RBO) oleogels structured with various ratios of EC and a binary wax blend (9:1 beeswax (BW): carnauba wax (CRW)), varied in 0.5 % w/w increments at a constant total gelator concentration of 4 % w/w.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
Key Lab of Rubber-Plastics, Ministry of Education/Shandong Provincial Key, Lab of Rubber-Plastics, School of Polymer Science and Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China. Electronic address:
A dynamically crosslinked network VEC (vulcanized ESO and CA) was synthesized in situ via zinc acetate-catalyzed epoxy ring-opening between epoxidized soybean oil (ESO) and anhydrous citric acid (CA), then incorporated into polylactic acid (PLA)/polybutylene adipate terephthalate (PBAT) blends to enhance interfacial compatibility. The dynamic ester-exchange network acted as an intermediate phase, improving the integration of the flexible PBAT phase within the rigid PLA matrix. VEC content critically influenced mechanical properties, with in-situ crosslinking during dynamic vulcanization enhancing chain interactions and blend homogeneity.
View Article and Find Full Text PDFFood Chem
August 2025
Division of Biotechnology, Karunya Institute of Technology and Sciences, Coimbatore 641114, India. Electronic address:
Optimal proportions of plasticizers, crosslinkers, and hydrophobicity modifiers are essential for biopolymer film formulations. In this study, Cellulose acetate bioplastic films were prepared with varying concentrations of polyethylene glycol (PEG), malic acid (MA), and hexadecanoic acid (HAD). The resulting films were characterized for thickness (TH), water absorbency (WA), transparency (TP), and equilibrium moisture content (MC).
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