Blom, M., van Putten, R.-J., van der Maas, K., Wang, B., van Klink, G. P. M., & Gruter, G.-JM. (2024). Terephthalate Copolyesters Based on 2,3-Butanediol and Ethylene Glycol and Their Properties. Polymers, 16(15), Article 2177. https://doi.org/10.3390/polym16152177[details]
Bottega Pergher, B., Weinland, D. H., van Putten, R.-J., & Gruter, G. M. (2024). The search for rigid, tough polyesters with high Tg - renewable aromatic polyesters with high isosorbide content. RSC Sustainability, 2(9), 2644-2656. https://doi.org/10.1039/d4su00294f[details]
Wang, Y., van Putten, R.-J., Tietema, A., Parsons, J. R., & Gruter, G. M. (2024). Polyester biodegradability: importance and potential for optimisation. Green Chemistry, 26(7), 3698-3716. https://doi.org/10.1039/d3gc04489k[details]
Wang, Y., van der Maas, K., Weinland, D. H., Trijnes, D., van Putten, R.-J., Tietema, A., Parsons, J. R., de Rijke, E., & Gruter, G.-JM. (2024). Relationship between Composition and Environmental Degradation of Poly(isosorbide-co-diol oxalate) (PISOX) Copolyesters. Environmental Science and Technology, 58(5), 2293-2302. https://doi.org/10.1021/acs.est.2c09699[details]
van der Maas, K., Wang, Y., Weinland, D. H., van Putten, R.-J., Wang, B., & Gruter, G. M. (2024). PISOX Copolyesters─Bio- and CO2-Based Marine-Degradable High-Performance Polyesters. ACS Sustainable Chemistry and Engineering, 12(26), 9822-9832. https://doi.org/10.1021/acssuschemeng.4c02266[details]
van der Maas, K., Weinland, D. H., van Putten, R.-J., Wang, B., & Gruter, G.-JM. (2024). Catalyst free PET and PEF polyesters using a new traceless oxalate chain extender. Green Chemistry, 26(22), 11182-11195. https://doi.org/10.1039/d4gc02791d[details]
Tian, L., Skoczynska, E., van Putten, R.-J., Leslie, H. A., & Gruter, G.-JM. (2023). Quantification of polyethylene terephthalate micro- and nanoplastics in domestic wastewater using a simple three-step method. Science of the Total Environment, 857(2), Article 159209. https://doi.org/10.1016/j.scitotenv.2022.159209[details]
Tian, L., Skoczynska, E., Siddhanti, D., van Putten, R.-J., Leslie, H. A., & Gruter, G.-JM. (2022). Quantification of polyethylene terephthalate microplastics and nanoplastics in sands, indoor dust and sludge using a simplified in-matrix depolymerization method. Marine Pollution Bulletin, 175, Article 113403. https://doi.org/10.1016/j.marpolbul.2022.113403[details]
Tian, L., van Putten, R. J., & Gruter, G. J. M. (2022). Plastic Pollution: The Role of (Bio)Based Plastics and other Solutions. In M. Dusselier , & J.-P. Lange (Eds.), Biodegradable Polymers in the Circular Economy (pp. 59-81). Wiley-VCH. https://doi.org/10.1002/9783527827589.ch3[details]
Wang, Y., Davey, C. J. E., van der Maas, K., van Putten, R.-J., Tietema, A., Parsons, J. R., & Gruter, G.-JM. (2022). Biodegradability of novel high Tg poly(isosorbide-co-1,6-hexanediol) oxalate polyester in soil and marine environments. Science of the Total Environment, 815, Article 152781. https://doi.org/10.1016/j.scitotenv.2021.152781[details]
Wang, Y., Murcia Valderrama, M. A., van Putten, R.-J., Davey, C. J. E., Tietema, A., Parsons, J. R., Wang, B., & Gruter, G.-JM. (2022). Biodegradation and non-enzymatic hydrolysis of poly(Lactic-co-glycolic acid) (plga12/88 and plga6/94). Polymers, 14(1), Article 15. https://doi.org/10.3390/polym14010015[details]
Weinland, D. H., van Putten, R.-J., & Gruter, G.-JM. (2022). Evaluating the commercial application potential of polyesters with 1,4:3,6-dianhydrohexitols (isosorbide, isomannide and isoidide) by reviewing the synthetic challenges in step growth polymerization. European Polymer Journal, 164, Article 110964. https://doi.org/10.1016/j.eurpolymj.2021.110964[details]
Weinland, D. H., van der Maas, K., Wang, Y., Bottega Pergher, B., van Putten, R. J., Wang, B., & Gruter, G. J. M. (2022). Overcoming the low reactivity of biobased, secondary diols in polyester synthesis. Nature Communications, 13, Article 7370. https://doi.org/10.1038/s41467-022-34840-2[details]
Valderrama, M. A. M., van Putten, R.-J., & Gruter, G.-JM. (2020). PLGA Barrier Materials from CO2. The influence of Lactide Co-monomer on Glycolic Acid Polyesters. ACS Applied Polymer Materials, 2(7), 2706-2718. https://doi.org/10.1021/acsapm.0c00315[details]
Valderrama, M. A. M., van Putten, R.-J., & Gruter, G.-JM. (2019). The potential of oxalic - and glycolic acid based polyesters (review). Towards CO2 as a feedstock (Carbon Capture and Utilization - CCU). European Polymer Journal, 119, 445-468. https://doi.org/10.1016/j.eurpolymj.2019.07.036[details]
Ampelli, C., Centi, G., Genovese, C., Papanikolaou, G., Pizzi, R., Perathoner, S., van Putten, R. -J., Schouten, K. J. P., Gluhoi, A. C., & van der Waal, J. C. (2016). A Comparative Catalyst Evaluation for the Selective Oxidative Esterification of Furfural. Topics in Catalysis, 59(17-18), 1659-1667. https://doi.org/10.1007/s11244-016-0675-y
2025
van der Maas, K. (2025). The journey towards sustainable plastics: Activated oxalates as key to hight Tg polyesters. [Thesis, fully internal, Universiteit van Amsterdam]. [details]
Murcia Valderrama, M. A. (2022). Stepping stones in CO2 utilization: Synthesis and evaluation of oxalic- and glycolic acid (co)polyesters. [Thesis, fully internal, Universiteit van Amsterdam]. [details]
Wang, Y. (2022). Environmental biodegradability of hydrolysable polyesters from renewable resources. [Thesis, fully internal, Universiteit van Amsterdam]. [details]
Weinland, D. H. (2022). Synthesis of rigid biobased polyesters: Overcoming the low reactivity of secondary diols in polyester synthesis. [Thesis, fully internal, Universiteit van Amsterdam]. [details]
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