The Merger of Transition Metal and Photocatalysis: Recent Advances and Prospects in Asymmetric Intermolecular 1,2-Difunctionalization of Alkenes
Abstract
1. Introduction
2. Visible Light-Mediated Copper-Catalyzed Asymmetric Difunctionalizations of Alkenes
2.1. Enantioselective C–CN Difunctionalization
2.2. Enantioselective Dual Carbofunctionalization
2.3. Enantioselective C-O Difunctionalization
3. Visible Light-Mediated Nickel-Catalyzed Asymmetric Difunctionalizations of Alkenes
3.1. Enantioselective Alkylarylation of Alkene
3.2. Enantioselective Sulfonylalkenylation
3.3. Enantioselective Silylarylation
4. Visible Light-Mediated Palladium-Catalyzed Asymmetric Difunctionalizations of Alkenes
4.1. Enantioselective Aminoalkylation
4.2. Enantioselective Alkylsulfonylation
5. Visible Light-Mediated Cobalt-Catalyzed Asymmetric Difunctionalizations of Alkenes
Enantioselective Hydroamination
6. Conclusions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AC | acetone |
| CPME | cyclopentyl methyl ether |
| Cy2Nme | N,N-dicyclohexylmethylamine |
| DMA | N,N-dimethylacetamide |
| DCE | dichloroethane |
| DCM | dichloromethane |
| DMSO | dimethyl sulfoxide |
| EA | ethyl acetate |
| EDA | electron donor-acceptor |
| HAT | hydrogen atom transfer |
| HEH | Hantzsch ester |
| iPr2O | diisopropyl ether |
| MeCN | acetonitrile |
| NMP | N-methylpyrrolidone |
| PX | paraxylene |
| PCy3 | tricyclohexyl phosphine |
| SET | single-electron transfer |
| THF | tetrahydrofuran |
| TBHP | tert-butyl hydroperoxide |
| TOL | toluene |
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| Copper | Nickel | Palladium | Cobalt | |
|---|---|---|---|---|
| Typical oxidation states | CuI/CuII/CuIII | Ni0/NiII/NiIII | Pd0/PdII | CoII/CoIII |
| Preferred ligand types | Bisoxazoline | Bisoxazoline; Biimidazoline | Bisphosphine | Salen |
| Stereoselectivity step | Reductive elimination from CuIII | Enantioselective radical capture at NiII | Nucleophilic attack on π-allyl-Pd complex | C–Co bond formation via radical addition |
| Preferred alkene substrates | Electron-deficient alkenes, 1,3-enynes | styrenes, acrylates, vinyl phosphonates | 1,3-Dienes | Unactivated alkenes |
| Typical bond formations | C–C, C–O, C–N | C–C, C–S, C–Si | C–N, C–S | C–N |
| Photocatalyst compatibility | Organic PC, Cu-excited (no external PC) | PC1, PC7 | Pd-excited (no external PC) | Salen-Co with organic PC |
| strengths | Versatile for C–O/C–N bonds; well-developed Box ligands | Flexible oxidation states; broad radical precursor compatibility | Direct C(sp3)–H functionalization; π-allyl chemistry | HAT-mediated functionalization of unactivated alkenes |
| limitations | Limited to activated alkenes | High ligand loading | High catalyst loading; limited to conjugated dienes | Limited substrate scope; emerging field |
| Representative references | [29,30,31,32,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48,49] | [52,53,54,55,56,57,58,59,60,61,62,63,64] | [68,69,70] | [73] |
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Zhai, C.; Liu, Q.; Zhang, S.; He, W. The Merger of Transition Metal and Photocatalysis: Recent Advances and Prospects in Asymmetric Intermolecular 1,2-Difunctionalization of Alkenes. Catalysts 2026, 16, 284. https://doi.org/10.3390/catal16030284
Zhai C, Liu Q, Zhang S, He W. The Merger of Transition Metal and Photocatalysis: Recent Advances and Prospects in Asymmetric Intermolecular 1,2-Difunctionalization of Alkenes. Catalysts. 2026; 16(3):284. https://doi.org/10.3390/catal16030284
Chicago/Turabian StyleZhai, Chenkai, Quan Liu, Shengyong Zhang, and Wei He. 2026. "The Merger of Transition Metal and Photocatalysis: Recent Advances and Prospects in Asymmetric Intermolecular 1,2-Difunctionalization of Alkenes" Catalysts 16, no. 3: 284. https://doi.org/10.3390/catal16030284
APA StyleZhai, C., Liu, Q., Zhang, S., & He, W. (2026). The Merger of Transition Metal and Photocatalysis: Recent Advances and Prospects in Asymmetric Intermolecular 1,2-Difunctionalization of Alkenes. Catalysts, 16(3), 284. https://doi.org/10.3390/catal16030284
