Seonyoung Kim, Ahhyeon Choi, Hyunwoo Kim
H radical and anion reservoir, allowing vicinal and geminal bis(difluoromethylation) reactions that are inaccessible through classical two-electron organometallic logic.Third, we introduce a photon-primed electrosynthesis strategy in which direct substrate photoexcitation is coupled with anodic oxidation to access highly electrophilic intermediates. This hybrid activation mode bypasses conventional photocatalyst frameworks and enables light-assisted redox-chain processes, allowing weak nucleophiles to engage intermediates that are unattainable under purely photochemical or electrochemical conditions. This approach highlights how orthogonal energy inputs, photons and electrons, can be integrated to unlock new reactivity regimes.Together, these studies illustrate how electrochemical control over electron-transfer events can be leveraged to modulate reaction kinetics and redirect mechanistic pathways in unsaturated C-C bond functionalization. By treating redox processes as programmable features of reaction design rather than passive background events, electrochemistry provides a versatile framework for uncovering new mechanisms, redefining reagent behavior, and expanding the scope of synthetic transformations.