Atomically precise catalysts design toward efficient waste plastic hydrogenolysis
Zedong Zhang1,2, Shijie Shen1, Wenwu Zhong3
1Zhejiang Key Laboratory of Functional ionic membrane Materials and Technology for Hydrogen Production, Shaoxing University, Shaoxing, China.
Abstract:
Hydrogenolysis of waste plastics offers a promising route to valorize them into fuels, light olefins, and aromatics (BTX). Despite extensive studies, rational catalyst design and process optimization remain challenging. Although conventional catalysts (homogeneous, nanoparticle, bulk) have driven progress through interfacial and ensemble effects, the activity and stability of these systems ultimately originate from elementary steps at the atomic scale motivating a shift toward atomically precise active-site design. This Perspective highlights atomic active centers and key mechanistic factors and underscores the importance of techno-economic and life cycle analyses for atomically precise catalysts, providing guidance for designing efficient hydrogenolysis systems.
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