Catalytic combustion with a DPF honeycomb is currently a feasible way to abate soot particulate pollution, but it is still of great necessity to develop more efficient and cost-effective catalysts. To accomplish this, Ru was adopted to decorate a Tb 2 Ce 2 O 7+ x solid solution in its lattice (Ru-TC) or on its surface (Ru/TC-DP). The addition of Ru promotes the formation of catalytically critical Ru–O–Ce/Tb interfacial bonds and abundant oxygen vacancies, both of which are more numerous in Ru/TC-DP. DFT calculations confirm that Ru lowers the oxygen vacancy formation energy and the O 2 adsorption energy, especially on Ru/TC-DP, enhancing the generation of reactive oxygen anions (O 2 – , O 2 2– ). Isotopic 18 O 2 -TPSR-MS shows that Ru/TC-DP has a better capability to activate O 2 than Ru-TC. Furthermore, Ru/TC-DP owns more surface Ru 0 sites conducive to activating gaseous O 2 . Quasi in situ XPS revealed that Ru decoration promotes the dual Tb 4+ /Tb 3+ and Ce 4+ /Ce 3+ redox cycles, particularly with Ru/TC-DP. The excellent performance arises from synergy among three components: metallic Ru 0 sites adsorb and weaken O 2 , Ru–O–Ce/Tb interfacial bonds act as electron transfer channels that drive −–O cleavage and stabilize oxygen vacancies, and the abundant vacancies serve as acceptors for activated oxygen species. This cooperative mechanism establishes an efficient cycle for continuous oxygen activation and lattice oxygen replenishment. Consequently, Ru/TC-DP exhibits remarkable soot combustion activity ( T 50 = 333 °C, TOF = 2.90 × 10 –3 s –1 ). This work demonstrates that loading Ru onto the surface of Tb 2 Ce 2 O 7+ x provides a cost-effective strategy for designing high-performance soot combustion catalysts through multisite synergy.
Zhang et al. (Tue,) studied this question.