Cite the Following Article
Aldehydes as powerful initiators for photochemical transformations
Maria A. Theodoropoulou, Nikolaos F. Nikitas and Christoforos G. Kokotos
Beilstein J. Org. Chem. 2020, 16, 833–857.
https://doi.org/10.3762/bjoc.16.76
How to Cite
Theodoropoulou, M. A.; Nikitas, N. F.; Kokotos, C. G. Beilstein J. Org. Chem. 2020, 16, 833–857. doi:10.3762/bjoc.16.76
Download Citation
Citation data can be downloaded as file using the "Download" button or used for copy/paste from the text window
below.
Citation data in RIS format can be imported by all major citation management software, including EndNote,
ProCite, RefWorks, and Zotero.
Presentation Graphic
| Picture with graphical abstract, title and authors for social media postings and presentations. | ||
| Format: PNG | Size: 137.8 KB | Download |
Citations to This Article
Up to 20 of the most recent references are displayed here.
Scholarly Works
- Karuppasamy, M.; Salem, M. S. H.; Jang, K.; Arisawa, M.; Kirihara, M.; Takizawa, S. Kinetically guided on-demand m CPBA generation enables safe and sustainable light-driven synthesis of Davis reagents. Green Chemistry 2026, 28, 12899–12907. doi:10.1039/d6gc02210c
- Tanimoto, K.; Kasubuchi, A.; Sugime, H.; Tanaka, A.; Kominami, H. Continuous Flow Photocatalytic Hydrogen‐Transfer Reduction of Benzaldehydes in a Helical Packed‐Bed Reactor. ChemCatChem 2026, 18. doi:10.1002/cctc.70977
- Cho, H.; Ullah, Z.; Kumar, S.; Kim, S.; Bayarkhuu, B.; Zhou, X.; Li, Y.; Kim, S.; Son, M.; Chung, J.; Byun, J. High-throughput discovery of organic working solutions enabling radical photochemistry for scalable H2O2 production. Joule 2026, 102603. doi:10.1016/j.joule.2026.102603
- Alfano, A. I.; Tufano, L. M. M.; Summa, V.; Brindisi, M. Efficient and scalable photochemical coupling of pinacol and aza-pinacol in continuous-flow. Communications chemistry 2026, 9. doi:10.1038/s42004-026-02125-0
- Archer, G.; Lécuyer, S.; Clément, J.-L.; Gigmes, D.; Nechab, M.; Manick, A.-D. A sunlight-compatible photochemical thiol–ene reaction promoted by a paracyclophane-derived photocatalyst. Green Chemistry 2026, 28, 6169–6174. doi:10.1039/d5gc06810j
- Patel, V. K.; Patel, D. P.; Singh, S. K. Visible Light‐Driven Multicomponent Synthesis of N ‐Arylquinolines Under Green Synthetic Approach. Journal of Heterocyclic Chemistry 2026, 63, 607–613. doi:10.1002/jhet.70159
- Zhang, T.; Zhang, J. Photocatalyzed hydrogen transfer enabled three-component radical cascade reactions: Direct access to thioesters from primary alcohols, elemental sulfur and alkenes. Chinese Chemical Letters 2026, 37, 111131. doi:10.1016/j.cclet.2025.111131
- Smirnov, A. Y.; Krasnova, S. A.; Opryshko, V. E.; Mikhaylov, A. A.; Baranov, M. S.; Ivanov, D. S. Alkyl bromide-promoted photo-methylation of benzaldehydes with DMSO as the methyl source. Organic & Biomolecular Chemistry 2026. doi:10.1039/d6ob01155a
- Kumari, S.; Gupta, P. K.; Kumar, A.; Kumar, R. Oxidative Transformation of Ethylbenzene Utilizing Metal Bound Immobilized Catalysts. EURASIAN JOURNAL OF CHEMISTRY 2025, 30, 120–136. doi:10.31489/2959-0663/4-25-2
- Babawale, F.; Ghosh, I.; König, B. Photo-Catalyzed Synthesis of Indanones from Aromatic Aldehydes and Terminal Alkynes. The Journal of organic chemistry 2025, 90, 13885–13890. doi:10.1021/acs.joc.5c01749
- Gu, J.; Dutta, S.; Sioud, S.; Go, B. R.; Maity, B.; Cavallo, L.; Zhang, R.; Chan, C. K. Photoinduced Transformation in Glyoxal- and Methylglyoxal-Ammonium Solutions: Role of Photolysis and Photosensitization. Environmental science & technology 2025, 59, 16628–16640. doi:10.1021/acs.est.5c04889
- Li, Z.; Fu, H.; Lopez, S. A.; Li, J. Machine learning photodynamics reveal intersystem-crossing-driven ladderdiene ring opening. Chemical science 2025, 16, 13031–13041. doi:10.1039/d4sc07395a
- Xin, J.; Shao, J.; Yu, X.; Huang, W.; Li, Y. Deciphering the Controversial Role of Sacrificial Agents in Photocatalytic H2O2 Production: Promoters or Source of Artifacts?. ACS Energy Letters 2025, 10, 3485–3491. doi:10.1021/acsenergylett.5c01771
- Michael, G.; Kolagkis, P. X.; Galathri, E. M.; Kokotos, C. G. Photoorganocatalytic Hydroacylation of Unactivated Olefins Utilizing Naphthaloylidenebenzimidazole (NBI) as the Catalyst. Synlett 2025, 36, 1559–1564. doi:10.1055/a-2544-1148
- Batsika, C. S.; Stini, N. A.; Kokotos, C. G. Visible Light-Mediated Decarboxylative Giese Addition Utilizing Thioxanthone or Thioxanthone-TfOH Complex as the Photocatalyst. Chemistry (Weinheim an der Bergstrasse, Germany) 2025, 31, e202404483. doi:10.1002/chem.202404483
- Tian, W.; Wang, J.; Jin, Y.; Cheng, Y.; Yan, K.; Hu, C.; Chen, C.; Wang, B.; Wang, Z.; Yuan, L. Initiator-Free Thiol-Aldehyde Photo Polycondensation. Angewandte Chemie (International ed. in English) 2025, 64, e202421231. doi:10.1002/anie.202421231
- Tian, W.; Wang, J.; Jin, Y.; Cheng, Y.; Yan, K.; Hu, C.; Chen, C.; Wang, B.; Wang, Z.; Yuan, L. Initiator‐Free Thiol‐Aldehyde Photo Polycondensation. Angewandte Chemie 2025, 137. doi:10.1002/ange.202421231
- Wang, F.; Wang, B.; Wang, Q.; Wang, L. Photochemical‐, Electrochemical‐, and Photoelectrochemical‐ Catalyzed Hydrogen Atom Transfer from Aldehydes to Acyl Radicals and Their Transformations. European Journal of Organic Chemistry 2024, 28. doi:10.1002/ejoc.202401206
- Gkizis, P. L.; Kokotos, C. G. Recent advances in photoorganocatalysis (2019–2023). Photochemistry; Royal Society of Chemistry, 2024; pp 199–236. doi:10.1039/9781837676552-00199
- Xu, Z.; Fang, W.; Zhou, F.; Jiang, C.; Zheng, J.; Li, Y.; Zhang, S.; Bao, Z.; Cao, Q.; Wang, J. Synergistic photocatalytic synthesis of H2O2: Mechanistic insights and sustainable applications. AIChE Journal 2024, 71. doi:10.1002/aic.18692
Patents
- KIEL GAVIN; SANDERS SAMUEL; KUMARASAMY ELANGO. METHODS OF FORMING AN OBJECT IN A VOLUME OF A PHOTOHARDENABLE COMPOSITION. WO 2023220463 A1, Nov 16, 2023.