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Results: 132
Number of items: 132
  • Open Access
    de Nijs, E. A., Bol, R., Gweyi-Onyango, J., van Hall, R. L., Ntinyari, W., & Tietema, A. (2024). Co-composting to close the cycle of resources during rose cultivation in Kenya: An agronomic and pesticide residue assessment. Cleaner Waste Systems, 8, Article 100154. https://doi.org/10.1016/j.clwas.2024.100154
  • Open Access
    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
  • Open Access
    de Nijs, E. A., Maas, L. M. E., Bol, R., & Tietema, A. (2023). Assessing the potential of co-composting rose waste as a sustainable waste management strategy: Nutrient availability and disease control. Journal of cleaner production, 399, Article 136685. https://doi.org/10.1016/j.jclepro.2023.136685
  • Open Access
    Li, Q., Steenberg Larsen, K., Kopittke, G., van Loon, E., & Tietema, A. (2023). Long-term temporal patterns in ecosystem carbon flux components and overall balance in a heathland ecosystem. Science of the Total Environment, 875, Article 162658. https://doi.org/10.1016/j.scitotenv.2023.162658
  • Open Access
    Lei, K., Creber, H., Bol, R., Tietema, A., & Sohi, S. P. (2023). Preferences of Pinus sylvestris seedling roots for different phosphorus sources under phosphorus-deficient conditions. Plant and Soil, 482(1-2), 229-244. https://doi.org/10.1007/s11104-022-05682-0
  • Open Access
    Ferrín, M., Márquez, L., Petersen, H., Salmon, S., Ponge, J.-F., Arnedo, M., Emmett, B., Beier, C., Schmidt, I. K., Tietema, A., de Angelis, P., Liberati, D., Kovács-Láng, E., Kröel-Dulay, G., Estiarte, M., Bartrons, M., Peñuelas, J., & Peguero, G. (2023). Trait-mediated responses to aridity and experimental drought by springtail communities across Europe. Functional Ecology, 37(1), 44-56. https://doi.org/10.1111/1365-2435.14036
  • Open Access
    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
  • Open Access
    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
  • Open Access
    Wang, Y. (2022). Environmental biodegradability of hydrolysable polyesters from renewable resources. [Thesis, fully internal, Universiteit van Amsterdam].
  • Open Access
    Polman, E. M. N., Gruter, G.-J., Parsons, J. R., & Tietema, A. (2021). Comparison of the aerobic biodegradation of biopolymers and the corresponding bioplastics: A review. Science of the Total Environment, 753, Article 141953. https://doi.org/10.1016/j.scitotenv.2020.141953
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