TY - JOUR
T1 - Scalable two-step annealing method for preparing ultra-high-density single-atom catalyst libraries
AU - Hai, Xiao
AU - Xi, Shibo
AU - Mitchell, Sharon
AU - Harrath, Karim
AU - Xu, Haomin
AU - Akl, Dario Faust
AU - Kong, Debin
AU - Li, Jing
AU - Li, Zejun
AU - Sun, Tao
AU - Yang, Huimin
AU - Cui, Yige
AU - Su, Chenliang
AU - Zhao, Xiaoxu
AU - Li, Jun
AU - Pérez-Ramírez, Javier
AU - Lu, Jiong
N1 - Publisher Copyright:
© 2021, The Author(s), under exclusive licence to Springer Nature Limited.
PY - 2022/2
Y1 - 2022/2
N2 - The stabilization of transition metals as isolated centres with high areal density on suitably tailored carriers is crucial for maximizing the industrial potential of single-atom heterogeneous catalysts. However, achieving single-atom dispersions at metal contents above 2 wt% remains challenging. Here we introduce a versatile approach combining impregnation and two-step annealing to synthesize ultra-high-density single-atom catalysts with metal contents up to 23 wt% for 15 metals on chemically distinct carriers. Translation to a standardized, automated protocol demonstrates the robustness of our method and provides a path to explore virtually unlimited libraries of mono- or multimetallic catalysts. At the molecular level, characterization of the synthesis mechanism through experiments and simulations shows that controlling the bonding of metal precursors with the carrier via stepwise ligand removal prevents their thermally induced aggregation into nanoparticles. The drastically enhanced reactivity with increasing metal content exemplifies the need to optimize the surface metal density for a given application. Moreover, the loading-dependent site-specific activity observed in three distinct catalytic systems reflects the well-known complexity in heterogeneous catalyst design, which now can be tackled with a library of single-atom catalysts with widely tunable metal loadings.
AB - The stabilization of transition metals as isolated centres with high areal density on suitably tailored carriers is crucial for maximizing the industrial potential of single-atom heterogeneous catalysts. However, achieving single-atom dispersions at metal contents above 2 wt% remains challenging. Here we introduce a versatile approach combining impregnation and two-step annealing to synthesize ultra-high-density single-atom catalysts with metal contents up to 23 wt% for 15 metals on chemically distinct carriers. Translation to a standardized, automated protocol demonstrates the robustness of our method and provides a path to explore virtually unlimited libraries of mono- or multimetallic catalysts. At the molecular level, characterization of the synthesis mechanism through experiments and simulations shows that controlling the bonding of metal precursors with the carrier via stepwise ligand removal prevents their thermally induced aggregation into nanoparticles. The drastically enhanced reactivity with increasing metal content exemplifies the need to optimize the surface metal density for a given application. Moreover, the loading-dependent site-specific activity observed in three distinct catalytic systems reflects the well-known complexity in heterogeneous catalyst design, which now can be tackled with a library of single-atom catalysts with widely tunable metal loadings.
UR - https://www.scopus.com/pages/publications/85119827384
U2 - 10.1038/s41565-021-01022-y
DO - 10.1038/s41565-021-01022-y
M3 - 文章
C2 - 34824400
AN - SCOPUS:85119827384
SN - 1748-3387
VL - 17
SP - 174
EP - 181
JO - Nature Nanotechnology
JF - Nature Nanotechnology
IS - 2
ER -