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Discovery of a Robust Single-Atom Ruthenium Emission Control Catalyst
DOI:10.1002/anie.4190140.png)
Abstract
En 中文
Herein, we discover a robust emission control catalyst featuring Ru single-atom sites even undergoing thermal oxidative aging at 850°C in a 10%H2O/10%O2/N2 mixture gas stream, expecting to substitute the traditional Rh catalysts by cutting ∼73% of the total cost. The stability challenges in elevated-temperature oxidizing environments were overcome via constructing the isolated Ru atoms anchored by square-planar coordination with four lattice oxygen in ceria and suppressing Ru atom migration toward the single Ru─Ox─Ce catalytic centers by introducing the Zr-rich materials, which are conducive to inhibiting the formation of undesirable N2O by-products during catalytic NO reduction. More importantly, the challenge of low-temperature C─H bond activation in short-chain alkanes on the isolated single-atom sites was broken through by constructing the CeZrO–RuSA–CeO2 three-phase interfaces to promote the H-spillover. The low-cost RuSA–CeO2/CZ single-atom catalyst exhibited much better stability, lower selectivity of N2O and NH3 by-products, and higher activity for CO conversion under oxygen-lean conditions compared to commercial Rh catalysts for automotive emission control applications. This work opens new avenues for developing the new generation of low-cost, robust emission control catalysts in the future.
Keywords:
H-spillover
Ru─O─Ce bridges
single-atom catalyst
thermal oxidative aging
three-way catalysis
Journal
IF:
16.9
Papers:
4.7K
Citations:
368

