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Publications

The Department of Chemistry is one of the most productive departments at Aarhus University. A considerable number of articles are published every year. 

Publications from Department of Chemistry

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Tronic, E. H., Yakovenko, O., Weidner, T., Baio, J. E., Penkala, R., Castner, D. G. & Thomas, W. E. (2016). Differential surface activation of the A1 domain of von Willebrand factor. Biointerphases, 11(2), Article 029803. https://doi.org/10.1116/1.4943618
Trippel, S., Mullins, T., L. M. Müller, N., S. Kienitz, J., J. Omiste, J., Stapelfeldt, H., González-Férez, R. & Küpper, J. (2014). Strongly driven quantum pendulum of the carbonyl sulfide molecule. Physical Review A, 89, Article 051401(R). https://doi.org/10.1103/PhysRevA.89.051401
Trinkunaite-Felsen, J., Birkedal, H., Zarkov, A., Tautkus, S., Stankeviciute, Z. & Kareiva, A. (2016). Environmentally benign fabrication of calcium hydroxyapatite using seashells collected in Baltic Sea countries: A comparative study. Phosphorus, Sulfur and Silicon and the Related Elements, 191(6), 919-925. https://doi.org/10.1080/10426507.2015.1114947
Townsend, D., Satzger, H., Ejdrup, T., Lee, A., Stapelfeldt, H. & Stolow, A. (2006). 1B2 (1Su+)Excited state dynamics in CS2. Journal of Chemical Physics, 125, 234302.
Tosner, Z., Glaser, S. J., Khaneja, N. & Nielsen, N. C. (2006). Effective hamiltonians by optimal control: solid-state NMR double-quantum and isotropic dipolar recoupling. Journal of Chemical Physics, 125, 184502-1 - 184502-10.
Torday, L. L., Jensen, S. K. & Csizmadia, I. G. (2003). Are nitrate esters likely to produce peroxy containing species? Med. Chem. Res., 12, 139-146.
Tomsen-Melero, J., Passemard, S., García-Aranda, N., Días-Riascos, Z. V., González-Rioja, R., Pedersen, J. N., Lyngsø, J., Merlo-Mas, J., Cristóbal-Lecina, E., Corchero, J. L., Pulido, D., Cámara-Sánchez, P., Portnaya, I., Ionita, I., Schwarz, Jr., S., Veciana, J., Sala, S., Royo, M., Córdoba, A. ... Ventosa, N. (2021). Impact of Chemical Composition on the Nanostructure and Biological Activity of α-Galactosidase-Loaded Nanovesicles for Fabry Disease Treatment. ACS applied materials & interfaces, 13(7), 7825-7838. https://doi.org/10.1021/acsami.0c16871
Tomsen-Melero, J., Moltó-Abad, M., Merlo-Mas, J., Díaz-Riascos, Z. V., Cristóbal-Lecina, E., Soldevila, A., Altendorfer-Kroath, T., Danino, D., Ionita, I., Pedersen, J. S., Snelling, L., Clay, H., Carreño, A., Corchero, J. L., Pulido, D., Casas, J., Veciana, J., Schwartz, S., Sala, S. ... González-Mira, E. (2024). Targeted nanoliposomes to improve enzyme replacement therapy of Fabry disease. Science Advances, 10(50), Article 50. https://doi.org/10.1126/sciadv.adq4738
Tolborg, S., Meier, S., Sádaba, I., Elliot, S. G., Kristensen, S. K., Saravanamurugan, S., Riisager, A., Fristrup, P., Skrydstrup, T. & Taarning, E. (2016). Tin-containing silicates: Identification of a glycolytic pathway via 3-deoxyglucosone. Green Chemistry, 18(11), 3360-3369. https://doi.org/10.1039/c5gc02840j