Department of Chemical and Biomolecular Engineering and Catalysis Center for Energy Innovation (CCEI), University of Delaware, Newark, DE, 19716, USA.
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, People's Republic of China.
Nat Commun. 2023 Jan 26;14(1):429. doi: 10.1038/s41467-023-36015-z.
The active site environment in enzymes has been known to affect catalyst performance through weak interactions with a substrate, but precise synthetic control of enzyme inspired heterogeneous catalysts remains challenging. Here, we synthesize hyper-crosslinked porous polymer (HCPs) with solely -OH or -CH groups on the polymer scaffold to tune the environment of active sites. Reaction rate measurements, spectroscopic techniques, along with DFT calculations show that HCP-OH catalysts enhance the hydrogenation rate of H-acceptor substrates containing carbonyl groups whereas hydrophobic HCP- CH ones promote non-H bond substrate activation. The functional groups go beyond enhancing substrate adsorption to partially activate the C = O bond and tune the catalytic sites. They also expose selectivity control in the hydrogenation of multifunctional substrates through preferential substrate functional group adsorption. The proposed synthetic strategy opens a new class of porous polymers for selective catalysis.
酶中的活性位点环境通过与底物的弱相互作用来影响催化剂的性能,但精确合成受酶启发的多相催化剂仍然具有挑战性。在这里,我们合成了具有聚合物支架上仅有的 -OH 或 -CH 基团的超交联多孔聚合物 (HCPs),以调节活性位点的环境。反应速率测量、光谱技术以及 DFT 计算表明,HCP-OH 催化剂增强了含有羰基的 H-受体底物的加氢速率,而疏水性的 HCP-CH 则促进了非 H 键底物的活化。这些官能团不仅增强了底物的吸附,还部分地激活了 C=O 键并调节了催化位点。它们还通过优先吸附底物官能团来展示在多功能底物加氢中的选择性控制。所提出的合成策略为选择性催化开辟了一类新的多孔聚合物。