Fang-Song Zhang, Zhi-Qiang Ding, Yan Liu, Jian-Ming Yang, Yuan Peng, Yee Lin Phang, Ji-Kang Jin, Feng-Lian Zhang, Tian Ye, Jialong Jie, Hongmei Su, Yi-Feng Wang
Partially halogenated alkyl motifs are prevalent in pharmaceuticals and functional materials, yet their synthesis via selective, stepwise dehalogenative functionalization of readily available polyhalogenated precursors constitutes a marked challenge. Furthermore, a general method capable of functionalizing C─F, C─Cl, and C─Br bonds under unified conditions has remained elusive because of their markedly different reactivities. Herein, we report a visible-light-driven, photocatalyst-free strategy for selective dehalogenative alkylation and hydrodehalogenation of polyhaloalkyl molecules across three C─X (X = F, Cl, or Br) bond types. The method relies on a unique photoactive complex formed from 4-dimethylaminopyridine (DMAP)-BH3 and thiophenol through synergistic noncovalent interactions. Visible-light excitation triggers a previously unrecognized thiol-to-borane charge transfer, ultimately generating the DMAP-boryl radical for selective C─X bond activation. The protocol accommodates tetra-, tri-, and dihaloalkyl substrates with broad functional group tolerance. Sequential C─X bond functionalization further provides modular access to structurally diverse partially halogenated alkyl architectures. Time-resolved spectroscopic studies and density functional theory (DFT) calculations support the proposed mechanistic pathway.