| Literature DB >> 29242344 |
Lei Nie1, Donghai Mei1, Haifeng Xiong2, Bo Peng1, Zhibo Ren1,3, Xavier Isidro Pereira Hernandez4, Andrew DeLaRiva2, Meng Wang1, Mark H Engelhard1, Libor Kovarik1, Abhaya K Datye5, Yong Wang1,4.
Abstract
To improve fuel efficiency, advanced combustion engines are being designed to minimize the amount of heat wasted in the exhaust. Hence, future generations of catalysts must perform at temperatures that are 100°C lower than current exhaust-treatment catalysts. Achieving low-temperature activity, while surviving the harsh conditions encountered at high engine loads, remains a formidable challenge. In this study, we demonstrate how atomically dispersed ionic platinum (Pt2+) on ceria (CeO2), which is already thermally stable, can be activated via steam treatment (at 750°C) to simultaneously achieve the goals of low-temperature carbon monoxide (CO) oxidation activity while providing outstanding hydrothermal stability. A new type of active site is created on CeO2 in the vicinity of Pt2+, which provides the improved reactivity. These active sites are stable up to 800°C in oxidizing environments.Entities:
Year: 2017 PMID: 29242344 DOI: 10.1126/science.aao2109
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728