Abstract

Photocatalytic Suzuki reaction is attractive for utilization of renewable solar energy to produce biphenyl compounds at ambient temperature. Herein, a unique and controllable strategy is used to simultaneously create surface oxygen vacancies and interface heterojunctions on CeO2 with double-layered nanotube morphology via one-step Fe doping engineering. The double-layered structure can improve light receiving areas of supports, meanwhile expose sufficient active sites (Pd). The abundant oxygen vacancies on the surface of CeO2 and the CeO2@Fe2O3 heterojunctions tremendously extend response region of visible light and promote separation of photoinduced electron-hole pairs. The directional transfer of electrons induced by Fe doping to Pd accelerates the oxidative addition in Suzuki reactions, finally achieves high catalytic activity for biphenyl products with a turnover frequency (TOF) of 1770 h−1 under visible light at ambient temperature, about 35 times higher than that of reaction without illumination.

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