[{"language":[{"iso":"eng"}],"doi":"10.1039/D5CC04700E","title":"Solid-state polycyclotrimerization of diynes to porous organic polymers","year":"2025","author":[{"full_name":"Hutsch, Stefanie","first_name":"Stefanie","last_name":"Hutsch"},{"full_name":"Grätz, Sven","first_name":"Sven","last_name":"Grätz"},{"first_name":"Jonas","last_name":"Lins","full_name":"Lins, Jonas"},{"full_name":"Gutmann, Torsten","first_name":"Torsten","last_name":"Gutmann","id":"118165"},{"full_name":"Borchardt, Lars","last_name":"Borchardt","first_name":"Lars"}],"publication_identifier":{"issn":["1359-7345"]},"date_updated":"2026-02-17T16:16:36Z","intvolume":"        61","date_created":"2026-02-07T15:47:03Z","type":"journal_article","issue":"80","publication":"Chemical Communications","extern":"1","abstract":[{"lang":"eng","text":"Herein, we report a solid-state polycyclotrimerization of 1,4-diethynylbenzene using mechanochemical activation in a ball mill, yielding a highly porous and hydrophobic hyperbranched polymer (HBP) with a specific surface area of up to 570 m2 g−1. The reaction, catalyzed by Fe(hmds)2 and conducted under solvent-free conditions, was optimized by varying milling time and frequency. This method enables the efficient synthesis of insoluble, porous organic polymers with high yields (up to 95%) and offers an environmentally friendly alternative to traditional solution-based polymerizations."}],"page":"15622–15625","_id":"63990","publisher":"The Royal Society of Chemistry","user_id":"100715","volume":61,"status":"public","citation":{"chicago":"Hutsch, Stefanie, Sven Grätz, Jonas Lins, Torsten Gutmann, and Lars Borchardt. “Solid-State Polycyclotrimerization of Diynes to Porous Organic Polymers.” <i>Chemical Communications</i> 61, no. 80 (2025): 15622–15625. <a href=\"https://doi.org/10.1039/D5CC04700E\">https://doi.org/10.1039/D5CC04700E</a>.","short":"S. Hutsch, S. Grätz, J. Lins, T. Gutmann, L. Borchardt, Chemical Communications 61 (2025) 15622–15625.","ieee":"S. Hutsch, S. Grätz, J. Lins, T. Gutmann, and L. Borchardt, “Solid-state polycyclotrimerization of diynes to porous organic polymers,” <i>Chemical Communications</i>, vol. 61, no. 80, pp. 15622–15625, 2025, doi: <a href=\"https://doi.org/10.1039/D5CC04700E\">10.1039/D5CC04700E</a>.","apa":"Hutsch, S., Grätz, S., Lins, J., Gutmann, T., &#38; Borchardt, L. (2025). Solid-state polycyclotrimerization of diynes to porous organic polymers. <i>Chemical Communications</i>, <i>61</i>(80), 15622–15625. <a href=\"https://doi.org/10.1039/D5CC04700E\">https://doi.org/10.1039/D5CC04700E</a>","bibtex":"@article{Hutsch_Grätz_Lins_Gutmann_Borchardt_2025, title={Solid-state polycyclotrimerization of diynes to porous organic polymers}, volume={61}, DOI={<a href=\"https://doi.org/10.1039/D5CC04700E\">10.1039/D5CC04700E</a>}, number={80}, journal={Chemical Communications}, publisher={The Royal Society of Chemistry}, author={Hutsch, Stefanie and Grätz, Sven and Lins, Jonas and Gutmann, Torsten and Borchardt, Lars}, year={2025}, pages={15622–15625} }","ama":"Hutsch S, Grätz S, Lins J, Gutmann T, Borchardt L. Solid-state polycyclotrimerization of diynes to porous organic polymers. <i>Chemical Communications</i>. 2025;61(80):15622–15625. doi:<a href=\"https://doi.org/10.1039/D5CC04700E\">10.1039/D5CC04700E</a>","mla":"Hutsch, Stefanie, et al. “Solid-State Polycyclotrimerization of Diynes to Porous Organic Polymers.” <i>Chemical Communications</i>, vol. 61, no. 80, The Royal Society of Chemistry, 2025, pp. 15622–15625, doi:<a href=\"https://doi.org/10.1039/D5CC04700E\">10.1039/D5CC04700E</a>."}},{"publication":"Chemical Communications","citation":{"apa":"Dornbusch, D., Hanke, M., Tomm, E., Kielar, C., Grundmeier, G., Keller, A., &#38; Fahmy, K. (2024). Cold denaturation of DNA origami nanostructures. <i>Chemical Communications</i>. <a href=\"https://doi.org/10.1039/d3cc05985e\">https://doi.org/10.1039/d3cc05985e</a>","ieee":"D. Dornbusch <i>et al.</i>, “Cold denaturation of DNA origami nanostructures,” <i>Chemical Communications</i>, 2024, doi: <a href=\"https://doi.org/10.1039/d3cc05985e\">10.1039/d3cc05985e</a>.","short":"D. Dornbusch, M. Hanke, E. Tomm, C. Kielar, G. Grundmeier, A. Keller, K. Fahmy, Chemical Communications (2024).","chicago":"Dornbusch, Daniel, Marcel Hanke, Emilia Tomm, Charlotte Kielar, Guido Grundmeier, Adrian Keller, and Karim Fahmy. “Cold Denaturation of DNA Origami Nanostructures.” <i>Chemical Communications</i>, 2024. <a href=\"https://doi.org/10.1039/d3cc05985e\">https://doi.org/10.1039/d3cc05985e</a>.","mla":"Dornbusch, Daniel, et al. “Cold Denaturation of DNA Origami Nanostructures.” <i>Chemical Communications</i>, Royal Society of Chemistry (RSC), 2024, doi:<a href=\"https://doi.org/10.1039/d3cc05985e\">10.1039/d3cc05985e</a>.","ama":"Dornbusch D, Hanke M, Tomm E, et al. Cold denaturation of DNA origami nanostructures. <i>Chemical Communications</i>. Published online 2024. doi:<a href=\"https://doi.org/10.1039/d3cc05985e\">10.1039/d3cc05985e</a>","bibtex":"@article{Dornbusch_Hanke_Tomm_Kielar_Grundmeier_Keller_Fahmy_2024, title={Cold denaturation of DNA origami nanostructures}, DOI={<a href=\"https://doi.org/10.1039/d3cc05985e\">10.1039/d3cc05985e</a>}, journal={Chemical Communications}, publisher={Royal Society of Chemistry (RSC)}, author={Dornbusch, Daniel and Hanke, Marcel and Tomm, Emilia and Kielar, Charlotte and Grundmeier, Guido and Keller, Adrian and Fahmy, Karim}, year={2024} }"},"abstract":[{"text":"<jats:p>The coupling of structural transitions to heat capacity changes leads to destabilization of macromolecules at both, elevated and lowered temperatures. DNA origami not only exhibit this property but also provide...</jats:p>","lang":"eng"}],"date_created":"2024-04-23T08:20:05Z","keyword":["Materials Chemistry","Metals and Alloys","Surfaces","Coatings and Films","General Chemistry","Ceramics and Composites","Electronic","Optical and Magnetic Materials","Catalysis"],"type":"journal_article","department":[{"_id":"302"}],"status":"public","year":"2024","title":"Cold denaturation of DNA origami nanostructures","author":[{"full_name":"Dornbusch, Daniel","last_name":"Dornbusch","first_name":"Daniel"},{"full_name":"Hanke, Marcel","first_name":"Marcel","last_name":"Hanke"},{"id":"68157","full_name":"Tomm, Emilia","first_name":"Emilia","last_name":"Tomm"},{"full_name":"Kielar, Charlotte","first_name":"Charlotte","last_name":"Kielar"},{"full_name":"Grundmeier, Guido","last_name":"Grundmeier","first_name":"Guido","id":"194"},{"id":"48864","last_name":"Keller","orcid":"0000-0001-7139-3110","first_name":"Adrian","full_name":"Keller, Adrian"},{"first_name":"Karim","last_name":"Fahmy","full_name":"Fahmy, Karim"}],"publication_identifier":{"issn":["1359-7345","1364-548X"]},"date_updated":"2024-04-23T08:21:05Z","publication_status":"published","_id":"53621","language":[{"iso":"eng"}],"publisher":"Royal Society of Chemistry (RSC)","doi":"10.1039/d3cc05985e","user_id":"48864"},{"citation":{"mla":"Kossmann, Janina, et al. “Mn(&#60;scp&#62;ii&#60;/Scp&#62;) Sub-Nanometric Site Stabilization in Noble, N-Doped Carbonaceous Materials for Electrochemical CO<sub>2</sub> Reduction.” <i>Chemical Communications</i>, vol. 58, no. 31, Royal Society of Chemistry (RSC), 2022, pp. 4841–44, doi:<a href=\"https://doi.org/10.1039/d2cc00585a\">10.1039/d2cc00585a</a>.","ama":"Kossmann J, Sánchez-Manjavacas MLO, Brandt J, Heil T, Lopez Salas N, Albero J. Mn(&#60;scp&#62;ii&#60;/scp&#62;) sub-nanometric site stabilization in noble, N-doped carbonaceous materials for electrochemical CO<sub>2</sub> reduction. <i>Chemical Communications</i>. 2022;58(31):4841-4844. doi:<a href=\"https://doi.org/10.1039/d2cc00585a\">10.1039/d2cc00585a</a>","bibtex":"@article{Kossmann_Sánchez-Manjavacas_Brandt_Heil_Lopez Salas_Albero_2022, title={Mn(&#60;scp&#62;ii&#60;/scp&#62;) sub-nanometric site stabilization in noble, N-doped carbonaceous materials for electrochemical CO<sub>2</sub> reduction}, volume={58}, DOI={<a href=\"https://doi.org/10.1039/d2cc00585a\">10.1039/d2cc00585a</a>}, number={31}, journal={Chemical Communications}, publisher={Royal Society of Chemistry (RSC)}, author={Kossmann, Janina and Sánchez-Manjavacas, Maria Luz Ortiz and Brandt, Jessica and Heil, Tobias and Lopez Salas, Nieves and Albero, Josep}, year={2022}, pages={4841–4844} }","apa":"Kossmann, J., Sánchez-Manjavacas, M. L. O., Brandt, J., Heil, T., Lopez Salas, N., &#38; Albero, J. (2022). Mn(&#60;scp&#62;ii&#60;/scp&#62;) sub-nanometric site stabilization in noble, N-doped carbonaceous materials for electrochemical CO<sub>2</sub> reduction. <i>Chemical Communications</i>, <i>58</i>(31), 4841–4844. <a href=\"https://doi.org/10.1039/d2cc00585a\">https://doi.org/10.1039/d2cc00585a</a>","ieee":"J. Kossmann, M. L. O. Sánchez-Manjavacas, J. Brandt, T. Heil, N. Lopez Salas, and J. Albero, “Mn(&#60;scp&#62;ii&#60;/scp&#62;) sub-nanometric site stabilization in noble, N-doped carbonaceous materials for electrochemical CO<sub>2</sub> reduction,” <i>Chemical Communications</i>, vol. 58, no. 31, pp. 4841–4844, 2022, doi: <a href=\"https://doi.org/10.1039/d2cc00585a\">10.1039/d2cc00585a</a>.","short":"J. Kossmann, M.L.O. Sánchez-Manjavacas, J. Brandt, T. Heil, N. Lopez Salas, J. Albero, Chemical Communications 58 (2022) 4841–4844.","chicago":"Kossmann, Janina, Maria Luz Ortiz Sánchez-Manjavacas, Jessica Brandt, Tobias Heil, Nieves Lopez Salas, and Josep Albero. “Mn(&#60;scp&#62;ii&#60;/Scp&#62;) Sub-Nanometric Site Stabilization in Noble, N-Doped Carbonaceous Materials for Electrochemical CO<sub>2</sub> Reduction.” <i>Chemical Communications</i> 58, no. 31 (2022): 4841–44. <a href=\"https://doi.org/10.1039/d2cc00585a\">https://doi.org/10.1039/d2cc00585a</a>."},"status":"public","_id":"40564","publisher":"Royal Society of Chemistry (RSC)","page":"4841-4844","volume":58,"user_id":"98120","issue":"31","publication":"Chemical Communications","abstract":[{"text":"<jats:p>The reported N-doped noble carbonaceous support provides strong stabilization of Mn(<jats:sc>ii</jats:sc>) sub-nanometric active sites as well as a convenient coordination environment to produce CO, HCOOH and CH<jats:sub>3</jats:sub>COOH from electrochemical CO<jats:sub>2</jats:sub> reduction.</jats:p>","lang":"eng"}],"date_created":"2023-01-27T16:19:46Z","keyword":["Materials Chemistry","Metals and Alloys","Surfaces","Coatings and Films","General Chemistry","Ceramics and Composites","Electronic","Optical and Magnetic Materials","Catalysis"],"type":"journal_article","publication_identifier":{"issn":["1359-7345","1364-548X"]},"author":[{"last_name":"Kossmann","first_name":"Janina","full_name":"Kossmann, Janina"},{"last_name":"Sánchez-Manjavacas","first_name":"Maria Luz Ortiz","full_name":"Sánchez-Manjavacas, Maria Luz Ortiz"},{"full_name":"Brandt, Jessica","last_name":"Brandt","first_name":"Jessica"},{"last_name":"Heil","first_name":"Tobias","full_name":"Heil, Tobias"},{"full_name":"Lopez Salas, Nieves","last_name":"Lopez Salas","first_name":"Nieves","orcid":"https://orcid.org/0000-0002-8438-9548","id":"98120"},{"last_name":"Albero","first_name":"Josep","full_name":"Albero, Josep"}],"title":"Mn(<scp>ii</scp>) sub-nanometric site stabilization in noble, N-doped carbonaceous materials for electrochemical CO<sub>2</sub> reduction","year":"2022","intvolume":"        58","publication_status":"published","date_updated":"2023-01-27T16:35:48Z","language":[{"iso":"eng"}],"doi":"10.1039/d2cc00585a"},{"citation":{"chicago":"Reuter, Thomas, Ayla Kruse, Roland Schoch, Stefan Lochbrunner, Matthias Bauer, and Katja Heinze. “Higher MLCT Lifetime of Carbene Iron(&#60;scp&#62;ii&#60;/Scp&#62;) Complexes by Chelate Ring Expansion.” <i>Chemical Communications</i> 57, no. 61 (2021): 7541–44. <a href=\"https://doi.org/10.1039/d1cc02173g\">https://doi.org/10.1039/d1cc02173g</a>.","short":"T. Reuter, A. Kruse, R. Schoch, S. Lochbrunner, M. Bauer, K. Heinze, Chemical Communications 57 (2021) 7541–7544.","ama":"Reuter T, Kruse A, Schoch R, Lochbrunner S, Bauer M, Heinze K. Higher MLCT lifetime of carbene iron(&#60;scp&#62;ii&#60;/scp&#62;) complexes by chelate ring expansion. <i>Chemical Communications</i>. 2021;57(61):7541-7544. doi:<a href=\"https://doi.org/10.1039/d1cc02173g\">10.1039/d1cc02173g</a>","bibtex":"@article{Reuter_Kruse_Schoch_Lochbrunner_Bauer_Heinze_2021, title={Higher MLCT lifetime of carbene iron(&#60;scp&#62;ii&#60;/scp&#62;) complexes by chelate ring expansion}, volume={57}, DOI={<a href=\"https://doi.org/10.1039/d1cc02173g\">10.1039/d1cc02173g</a>}, number={61}, journal={Chemical Communications}, publisher={Royal Society of Chemistry (RSC)}, author={Reuter, Thomas and Kruse, Ayla and Schoch, Roland and Lochbrunner, Stefan and Bauer, Matthias and Heinze, Katja}, year={2021}, pages={7541–7544} }","mla":"Reuter, Thomas, et al. “Higher MLCT Lifetime of Carbene Iron(&#60;scp&#62;ii&#60;/Scp&#62;) Complexes by Chelate Ring Expansion.” <i>Chemical Communications</i>, vol. 57, no. 61, Royal Society of Chemistry (RSC), 2021, pp. 7541–44, doi:<a href=\"https://doi.org/10.1039/d1cc02173g\">10.1039/d1cc02173g</a>.","apa":"Reuter, T., Kruse, A., Schoch, R., Lochbrunner, S., Bauer, M., &#38; Heinze, K. (2021). Higher MLCT lifetime of carbene iron(&#60;scp&#62;ii&#60;/scp&#62;) complexes by chelate ring expansion. <i>Chemical Communications</i>, <i>57</i>(61), 7541–7544. <a href=\"https://doi.org/10.1039/d1cc02173g\">https://doi.org/10.1039/d1cc02173g</a>","ieee":"T. Reuter, A. Kruse, R. Schoch, S. Lochbrunner, M. Bauer, and K. Heinze, “Higher MLCT lifetime of carbene iron(&#60;scp&#62;ii&#60;/scp&#62;) complexes by chelate ring expansion,” <i>Chemical Communications</i>, vol. 57, no. 61, pp. 7541–7544, 2021, doi: <a href=\"https://doi.org/10.1039/d1cc02173g\">10.1039/d1cc02173g</a>."},"status":"public","page":"7541-7544","_id":"41003","publisher":"Royal Society of Chemistry (RSC)","user_id":"48467","volume":57,"issue":"61","publication":"Chemical Communications","abstract":[{"lang":"eng","text":"Combining strong σ-donating N-heterocyclic carbene ligands and π-accepting pyridine ligands with a high octahedricity in rigid iron(II) complexes increases the 3MLCT lifetime from 0.15 ps in the prototypical [Fe(tpy)2]2+ complex to 9.2 ps in [Fe(dpmi)2]2+12+. The tripodal CNN ligand dpmi (di(pyridine-2-yl)(3-methylimidazol-2-yl)methane) forms six-membered chelate rings with the iron(II) centre leading to close to 90° bite angles and enhanced iron-ligand orbital overlap"}],"date_created":"2023-01-30T16:49:33Z","keyword":["Materials Chemistry","Metals and Alloys","Surfaces","Coatings and Films","General Chemistry","Ceramics and Composites","Electronic","Optical and Magnetic Materials","Catalysis"],"type":"journal_article","department":[{"_id":"35"},{"_id":"306"}],"title":"Higher MLCT lifetime of carbene iron(<scp>ii</scp>) complexes by chelate ring expansion","year":"2021","author":[{"full_name":"Reuter, Thomas","last_name":"Reuter","first_name":"Thomas"},{"full_name":"Kruse, Ayla","last_name":"Kruse","first_name":"Ayla"},{"id":"48467","first_name":"Roland","last_name":"Schoch","orcid":"0000-0003-2061-7289","full_name":"Schoch, Roland"},{"full_name":"Lochbrunner, Stefan","last_name":"Lochbrunner","first_name":"Stefan"},{"first_name":"Matthias","orcid":"0000-0002-9294-6076","last_name":"Bauer","full_name":"Bauer, Matthias","id":"47241"},{"full_name":"Heinze, Katja","last_name":"Heinze","first_name":"Katja"}],"publication_identifier":{"issn":["1359-7345","1364-548X"]},"publication_status":"published","date_updated":"2023-01-31T08:06:16Z","article_type":"original","intvolume":"        57","language":[{"iso":"eng"}],"doi":"10.1039/d1cc02173g"},{"language":[{"iso":"eng"}],"doi":"10.1039/d1cc01716k","year":"2021","title":"Distinct photodynamics of κ-N and κ-C pseudoisomeric iron(ii) complexes","author":[{"full_name":"Dierks, Philipp","last_name":"Dierks","first_name":"Philipp"},{"full_name":"Kruse, Ayla","last_name":"Kruse","first_name":"Ayla"},{"full_name":"Bokareva, Olga S.","last_name":"Bokareva","first_name":"Olga S."},{"full_name":"Al-Marri, Mohammed J.","first_name":"Mohammed J.","last_name":"Al-Marri"},{"full_name":"Kalmbach, Jens","first_name":"Jens","last_name":"Kalmbach"},{"first_name":"Marc","last_name":"Baltrun","full_name":"Baltrun, Marc"},{"full_name":"Neuba, Adam","last_name":"Neuba","first_name":"Adam"},{"id":"48467","orcid":"0000-0003-2061-7289","last_name":"Schoch","first_name":"Roland","full_name":"Schoch, Roland"},{"last_name":"Hohloch","first_name":"Stephan","full_name":"Hohloch, Stephan"},{"last_name":"Heinze","first_name":"Katja","full_name":"Heinze, Katja"},{"full_name":"Seitz, Michael","last_name":"Seitz","first_name":"Michael"},{"full_name":"Kühn, Oliver","last_name":"Kühn","first_name":"Oliver"},{"full_name":"Lochbrunner, Stefan","first_name":"Stefan","last_name":"Lochbrunner"},{"full_name":"Bauer, Matthias","first_name":"Matthias","orcid":"0000-0002-9294-6076","last_name":"Bauer","id":"47241"}],"publication_identifier":{"issn":["1359-7345","1364-548X"]},"publication_status":"published","date_updated":"2024-10-11T08:42:44Z","article_type":"original","intvolume":"        57","date_created":"2023-01-30T16:59:55Z","keyword":["Materials Chemistry","Metals and Alloys","Surfaces","Coatings and Films","General Chemistry","Ceramics and Composite","Metallkomplexe","Optical and Magnetic Materials","Catalysis"],"type":"journal_article","department":[{"_id":"35"},{"_id":"306"}],"publication":"Chemical Communications","issue":"54","abstract":[{"lang":"eng","text":"Two closely related FeII complexes with 2,6-bis(1-ethyl-1H-1,2,3-triazol-4yl)pyridine and 2,6-bis(1,2,3-triazol-5-ylidene)pyridine ligands are presented to gain new insights into the photophysics of bis(tridentate) iron(II) complexes. The [Fe(N^N^N)2]2+ pseudoisomer sensitizes singlet oxygen through a MC state with nanosecond lifetime after MLCT excitation, while the bis(tridentate) [Fe(C^N^C)2]2+ pseudoisomer possesses a similar 3MLCT lifetime as the tris(bidentate) [Fe(C^C)2(N^N)]2+ complexes with four mesoionic carbenes."}],"page":"6640-6643","_id":"41007","publisher":"Royal Society of Chemistry (RSC)","user_id":"48467","volume":57,"status":"public","citation":{"ieee":"P. Dierks <i>et al.</i>, “Distinct photodynamics of κ-N and κ-C pseudoisomeric iron(ii) complexes,” <i>Chemical Communications</i>, vol. 57, no. 54, pp. 6640–6643, 2021, doi: <a href=\"https://doi.org/10.1039/d1cc01716k\">10.1039/d1cc01716k</a>.","apa":"Dierks, P., Kruse, A., Bokareva, O. S., Al-Marri, M. J., Kalmbach, J., Baltrun, M., Neuba, A., Schoch, R., Hohloch, S., Heinze, K., Seitz, M., Kühn, O., Lochbrunner, S., &#38; Bauer, M. (2021). Distinct photodynamics of κ-N and κ-C pseudoisomeric iron(ii) complexes. <i>Chemical Communications</i>, <i>57</i>(54), 6640–6643. <a href=\"https://doi.org/10.1039/d1cc01716k\">https://doi.org/10.1039/d1cc01716k</a>","chicago":"Dierks, Philipp, Ayla Kruse, Olga S. Bokareva, Mohammed J. Al-Marri, Jens Kalmbach, Marc Baltrun, Adam Neuba, et al. “Distinct Photodynamics of κ-N and κ-C Pseudoisomeric Iron(Ii) Complexes.” <i>Chemical Communications</i> 57, no. 54 (2021): 6640–43. <a href=\"https://doi.org/10.1039/d1cc01716k\">https://doi.org/10.1039/d1cc01716k</a>.","short":"P. Dierks, A. Kruse, O.S. Bokareva, M.J. Al-Marri, J. Kalmbach, M. Baltrun, A. Neuba, R. Schoch, S. Hohloch, K. Heinze, M. Seitz, O. Kühn, S. Lochbrunner, M. Bauer, Chemical Communications 57 (2021) 6640–6643.","mla":"Dierks, Philipp, et al. “Distinct Photodynamics of κ-N and κ-C Pseudoisomeric Iron(Ii) Complexes.” <i>Chemical Communications</i>, vol. 57, no. 54, Royal Society of Chemistry (RSC), 2021, pp. 6640–43, doi:<a href=\"https://doi.org/10.1039/d1cc01716k\">10.1039/d1cc01716k</a>.","bibtex":"@article{Dierks_Kruse_Bokareva_Al-Marri_Kalmbach_Baltrun_Neuba_Schoch_Hohloch_Heinze_et al._2021, title={Distinct photodynamics of κ-N and κ-C pseudoisomeric iron(ii) complexes}, volume={57}, DOI={<a href=\"https://doi.org/10.1039/d1cc01716k\">10.1039/d1cc01716k</a>}, number={54}, journal={Chemical Communications}, publisher={Royal Society of Chemistry (RSC)}, author={Dierks, Philipp and Kruse, Ayla and Bokareva, Olga S. and Al-Marri, Mohammed J. and Kalmbach, Jens and Baltrun, Marc and Neuba, Adam and Schoch, Roland and Hohloch, Stephan and Heinze, Katja and et al.}, year={2021}, pages={6640–6643} }","ama":"Dierks P, Kruse A, Bokareva OS, et al. Distinct photodynamics of κ-N and κ-C pseudoisomeric iron(ii) complexes. <i>Chemical Communications</i>. 2021;57(54):6640-6643. doi:<a href=\"https://doi.org/10.1039/d1cc01716k\">10.1039/d1cc01716k</a>"}},{"date_created":"2021-05-26T10:28:03Z","type":"journal_article","citation":{"mla":"Deck, Eva, et al. “Redox-Responsive Phosphonite Gold Complexes in Hydroamination Catalysis.” <i>Chemical Communications</i>, 2019, pp. 5323–26, doi:<a href=\"https://doi.org/10.1039/c9cc01492f\">10.1039/c9cc01492f</a>.","bibtex":"@article{Deck_Wagner_Paradies_Breher_2019, title={Redox-responsive phosphonite gold complexes in hydroamination catalysis}, DOI={<a href=\"https://doi.org/10.1039/c9cc01492f\">10.1039/c9cc01492f</a>}, journal={Chemical Communications}, author={Deck, Eva and Wagner, Hanna E. and Paradies, Jan and Breher, Frank}, year={2019}, pages={5323–5326} }","ama":"Deck E, Wagner HE, Paradies J, Breher F. Redox-responsive phosphonite gold complexes in hydroamination catalysis. <i>Chemical Communications</i>. Published online 2019:5323-5326. doi:<a href=\"https://doi.org/10.1039/c9cc01492f\">10.1039/c9cc01492f</a>","ieee":"E. Deck, H. E. Wagner, J. Paradies, and F. Breher, “Redox-responsive phosphonite gold complexes in hydroamination catalysis,” <i>Chemical Communications</i>, pp. 5323–5326, 2019, doi: <a href=\"https://doi.org/10.1039/c9cc01492f\">10.1039/c9cc01492f</a>.","apa":"Deck, E., Wagner, H. E., Paradies, J., &#38; Breher, F. (2019). Redox-responsive phosphonite gold complexes in hydroamination catalysis. <i>Chemical Communications</i>, 5323–5326. <a href=\"https://doi.org/10.1039/c9cc01492f\">https://doi.org/10.1039/c9cc01492f</a>","chicago":"Deck, Eva, Hanna E. Wagner, Jan Paradies, and Frank Breher. “Redox-Responsive Phosphonite Gold Complexes in Hydroamination Catalysis.” <i>Chemical Communications</i>, 2019, 5323–26. <a href=\"https://doi.org/10.1039/c9cc01492f\">https://doi.org/10.1039/c9cc01492f</a>.","short":"E. Deck, H.E. Wagner, J. Paradies, F. Breher, Chemical Communications (2019) 5323–5326."},"publication":"Chemical Communications","abstract":[{"text":"<p>Very high activities were observed in the redox-induced hydroamination of alkynes by employing a redox-active gold(<sc>i</sc>) complex featuring an electron-deficient, terphenyl-substituted phosphonite-based ligand.</p>","lang":"eng"}],"_id":"22237","language":[{"iso":"eng"}],"page":"5323-5326","user_id":"53339","doi":"10.1039/c9cc01492f","publication_identifier":{"issn":["1359-7345","1364-548X"]},"author":[{"last_name":"Deck","first_name":"Eva","full_name":"Deck, Eva"},{"last_name":"Wagner","first_name":"Hanna E.","full_name":"Wagner, Hanna E."},{"id":"53339","full_name":"Paradies, Jan","first_name":"Jan","last_name":"Paradies","orcid":"0000-0002-3698-668X"},{"full_name":"Breher, Frank","first_name":"Frank","last_name":"Breher"}],"year":"2019","status":"public","title":"Redox-responsive phosphonite gold complexes in hydroamination catalysis","publication_status":"published","date_updated":"2023-01-23T12:58:23Z"},{"citation":{"chicago":"Veit, Philipp, Carla Volkert, Christoph Förster, Vadim Ksenofontov, Steffen Schlicher, Matthias Bauer, and Katja Heinze. “Gold(&#60;scp&#62;ii&#60;/Scp&#62;) in Redox-Switchable Gold(&#60;scp&#62;i&#60;/Scp&#62;) Catalysis.” <i>Chemical Communications</i> 55, no. 32 (2019): 4615–18. <a href=\"https://doi.org/10.1039/c9cc00283a\">https://doi.org/10.1039/c9cc00283a</a>.","short":"P. 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Mesoporous aluminophosphates from a single-source precursor. <i>Chemical Communications</i>, 406–407. <a href=\"https://doi.org/10.1039/b110662g\">https://doi.org/10.1039/b110662g</a>","ieee":"M. Tiemann and M. Fröba, “Mesoporous aluminophosphates from a single-source precursor,” <i>Chemical Communications</i>, pp. 406–407, 2002, doi: <a href=\"https://doi.org/10.1039/b110662g\">10.1039/b110662g</a>.","chicago":"Tiemann, Michael, and Michael Fröba. “Mesoporous Aluminophosphates from a Single-Source Precursor.” <i>Chemical Communications</i>, 2002, 406–7. <a href=\"https://doi.org/10.1039/b110662g\">https://doi.org/10.1039/b110662g</a>.","short":"M. Tiemann, M. Fröba, Chemical Communications (2002) 406–407.","mla":"Tiemann, Michael, and Michael Fröba. “Mesoporous Aluminophosphates from a Single-Source Precursor.” <i>Chemical Communications</i>, 2002, pp. 406–07, doi:<a href=\"https://doi.org/10.1039/b110662g\">10.1039/b110662g</a>.","ama":"Tiemann M, Fröba M. 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