Tan Mingwu, Yang Yanling, Yang Ying, Chen Jiali, Zhang Zhaoxia, Fu Gang, Lin Jingdong, Wan Shaolong, Wang Shuai, Wang Yong
State Key Laboratory for Physical Chemistry of Solid Surfaces, Collaborative Innovation Center of Chemistry for Energy Materials, National Engineering Laboratory for Green Chemical Productions of Alcohols-Ethers-Esters, and College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, China.
Voiland School of Chemical Engineering and Bioengineering, Washington State University, Pullman, WA, 99164, USA.
Nat Commun. 2022 Mar 18;13(1):1457. doi: 10.1038/s41467-022-29045-6.
Spontaneous migration of atomic hydrogen species from metal particles to the surface of their support, known as hydrogen spillover, has been claimed to play a major role in catalytic processes involving hydrogen. While this phenomenon is well established on reducible oxide supports, its realization on much more commonly used non-reducible oxides is still challenged. Here we present a general strategy to enable effective hydrogen spillover over non-reducible SiO with aid of gaseous organic molecules containing a carbonyl group. By using hierarchically-porous-SiO-supported bimetallic Pt-Fe catalysts with Pt nanoparticles exclusively deposited into the micropores, we demonstrate that activated hydrogen species generated on the Pt sites within the micropores can be readily transported by these oxygenate molecules to Fe sites located in macropores, leading to significantly accelerated hydrodeoxygenation rates on the latter sites. This finding provides a molecule-assisted approach to the rational design and optimization of multifunctional heterogeneous catalysts, reminiscent of the role of molecular coenzymes in bio-catalysis.
原子氢物种从金属颗粒自发迁移至其载体表面的现象,即所谓的氢溢流,被认为在涉及氢的催化过程中起主要作用。虽然这种现象在可还原氧化物载体上已得到充分证实,但其在更常用的不可还原氧化物上的实现仍面临挑战。在此,我们提出一种通用策略,借助含羰基的气态有机分子,使氢在不可还原的SiO上实现有效溢流。通过使用具有分级多孔结构的SiO负载双金属Pt-Fe催化剂,其中Pt纳米颗粒仅沉积在微孔中,我们证明在微孔内Pt位点上产生的活化氢物种能够通过这些含氧化合物分子轻松转移至位于大孔中的Fe位点,从而显著加快后者位点上的加氢脱氧速率。这一发现为多功能非均相催化剂的合理设计和优化提供了一种分子辅助方法,让人联想到分子辅酶在生物催化中的作用。