Depolymerization of Nylon-6 over a Supported Ruthenium Catalyst to ε-Caprolactam
Journal article, 2026
this work, we present a novel heterogeneous catalytic process where nylon-6 is efficiently hydro-depolymerized to produce its monomer (ε-caprolactam). Using ruthenium supported on zirconia with activated hydrogen as an active and selective catalyst, we received 94% yield of ε-caprolactam, with only 3.4% hexamethylenimine as a byproduct, for the breakdown of nylon-6 at 350 °C and 30 bar H2. The depolymerization of nylon-6 to ε-caprolactam is shown to be sensitive to Ru particle size, with the disruption of the semicrystalline structure of nylon-6 being a prerequisite for C−N bond cleavage. A low metal loading of 2.3 wt % Ru, with a particle size of 9.5 ± 2.3 nm, was the most efficient catalyst. XPS and H2-TPR revealed that the smaller Ru particles were easier to reduce, and this is suggested to be the reason for the higher activity. Moreover, we propose that Ru-supported catalysts, in conjunction with activated hydrogen, exert a synergistic effect, facilitating both the alteration of crystallinity and the cleavage of C−N bonds, thereby enhancing the depolymerization rate of nylon-6. The robustness of the catalyst system is studied using plasticizers and additives. Interestingly, the addition of water could suppress byproduct formation, resulting in 100% selectivity. Additionally, the reusability of the catalyst is demonstrated.
depolymerization
ruthenium
ε-caprolactam
zirconia
nylon-6
Author
Prabin Dhakal
Chalmers, Chemistry and Chemical Engineering, Chemical Technology
Abdenour Achour
Chalmers, Chemistry and Chemical Engineering, Chemical Technology
Hoang Phuoc Ho
Chalmers, Chemistry and Chemical Engineering, Chemical Technology
Aqsa Noreen
Chalmers, Chemistry and Chemical Engineering, Chemical Technology
Derek Claude Creaser
Chalmers, Chemistry and Chemical Engineering, Chemical Technology
Louise Olsson
Chalmers, Chemistry and Chemical Engineering, Chemical Technology
ACS Environmental Au
2694-2518 (eISSN)
Vol. 6 4 589-607Subject Categories (SSIF 2025)
Chemical Engineering
DOI
10.1021/acsenvironau.5c00272