Kakeru Matsukuma, Masanori Tayu, Kento Muto, Ryota Itai, Masahiro Noji, Satoshi Hayashi, Sayaka Ohrui, Nozomi Saito
The functionalization of recalcitrant chemical bonds that require extreme reduction potentials is often thwarted by the absence of a defined reaction field to control potent intermediates. Conventional multiphoton photocatalysis generates super-reductants, whose immense energy dissipates through chaotic, diffusion-controlled pathways. Herein, an "association-gated" strategy is introduced that constructs sequential electron donor-acceptor complexes as programmable reaction microenvironments. This system initially captures a single photon through its sulfide/naphthalene monoimide complex. The resulting naphthalene monoimide radical anion serves as a scaffold to pre-organize the haloarene substrate into a second, distinct electron donor-acceptor complex, creating a reaction pocket for the final, energy-storing excitation. Such supramolecular confinement generates an extreme reducing potential at the carbon-halogen bond, suppressing both diffusive side-reactions and parasitic hydrogen atom transfer from amine donors. This unlocks a broad scope of transformations under air-tolerant conditions, providing a versatile tool for late-stage diversification.