Self-Evolving PET-Induced Carbon Nanotube Modulated Ni Nanocomposites for Efficient PET-to-H2 Production.

Liu, Fangqi; Kong, Ge; Jiang, Yuan; Zhang, Guanyu; Cheng, Qing; Zhang, Xin; Shan, Chun; Wang, Jin et al. · Nano Lett · 2026

basic_science · Level V

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Abstract

Upcycling polyethylene terephthalate (PET) into H2-rich syngas offers a route for plastic pollution mitigation and green energy production yet remains constrained by low efficiency and catalyst deactivation. Here we report a carbon nanotube (CNT)-modulated catalytic strategy integrating PET decomposition with steam reforming. PET was first upcycled into CNT-modulated Ni nanocomposites, where PET-derived CNTs acted as structural and electronic bridges linking Ni nanoparticles (NPs) with the oxide support. Among catalysts evaluated in decomposition-catalytic steam reforming (DCSR), CNT-modulated Ni NPs anchored on γ-Al2O3 nanosheets (Ni NPs@PET-CNTs/γ-Al2O3) achieved a H2-rich syngas yield of 141.74 mmol/gPET (3175 mL/gPET), with excellent stability and self-regeneration under continuous operation. Mechanistic analysis revealed that the synergy of Ni0, PET-derived CNTs, and γ-Al2O3 underpinned enhanced activity and durability. This work establishes a paradigm where plastic waste acts as a carbon feedstock and catalyst modulator, enabling scalable PET upcycling toward sustainable H2-rich syngas production and circular carbon utilization.