TY - JOUR
T1 - Strategic purification and activation of waste-tire-derived pyrolytic carbon black for enhanced natural rubber reinforcement
T2 - Mechanistic insights and practical considerations
AU - Xie, Longfei
AU - Zhou, Ping
AU - Chen, Xiaoyan
AU - Duan, Pei Gao
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/2/28
Y1 - 2026/2/28
N2 - This study systematically investigated the reinforcement mechanisms of waste-tire-derived pyrolytic carbon black (CBp) in natural rubber (NR) composites at the component level through controlled demineralization strategies and modification treatments. This study identifies three main findings. First, SiO2 acts as a rigid structural skeleton that improves filler polarity and interfacial bonding, increasing the tensile strength by 16.8% (21.39 MPa) and the modulus M300 by 9.77 MPa. Second, ZnS negatively impacts composite performance by inducing stress concentration and weakening adhesion; its removal markedly improves the mechanical strength. Third, KOH activation increases the mesopore surface area from 36.27 to 45.69 m2/g, but this benefit is realized only when KOH activation is combined with SiO2 retention, resulting in optimal mechanical properties (22.17 MPa tensile, 10.48 MPa M300). This work delineates component-level reinforcement contributions, demonstrating that purified CBp with retained SiO2 exhibits performance comparable to that of fossil-derived carbon black (CB), whereas ZnS-free CBp-ZK shows superior dynamic mechanical properties (e.g., a reduced Payne effect). These findings advance the high-value utilization of CBp as a sustainable reinforcing filler, addressing critical gaps in waste tire pyrolysis product applications. This study further highlights the dual role of inorganic components, with SiO2 enhancing compatibility and ZnS impairing interfacial bonding, providing a foundation for industrial-scale CBp modification strategies.
AB - This study systematically investigated the reinforcement mechanisms of waste-tire-derived pyrolytic carbon black (CBp) in natural rubber (NR) composites at the component level through controlled demineralization strategies and modification treatments. This study identifies three main findings. First, SiO2 acts as a rigid structural skeleton that improves filler polarity and interfacial bonding, increasing the tensile strength by 16.8% (21.39 MPa) and the modulus M300 by 9.77 MPa. Second, ZnS negatively impacts composite performance by inducing stress concentration and weakening adhesion; its removal markedly improves the mechanical strength. Third, KOH activation increases the mesopore surface area from 36.27 to 45.69 m2/g, but this benefit is realized only when KOH activation is combined with SiO2 retention, resulting in optimal mechanical properties (22.17 MPa tensile, 10.48 MPa M300). This work delineates component-level reinforcement contributions, demonstrating that purified CBp with retained SiO2 exhibits performance comparable to that of fossil-derived carbon black (CB), whereas ZnS-free CBp-ZK shows superior dynamic mechanical properties (e.g., a reduced Payne effect). These findings advance the high-value utilization of CBp as a sustainable reinforcing filler, addressing critical gaps in waste tire pyrolysis product applications. This study further highlights the dual role of inorganic components, with SiO2 enhancing compatibility and ZnS impairing interfacial bonding, providing a foundation for industrial-scale CBp modification strategies.
KW - Carbon black
KW - Demineralization
KW - KOH activation
KW - Rubber reinforcement
KW - Waste tire pyrolysis
UR - https://www.scopus.com/pages/publications/105028355419
U2 - 10.1016/j.wasman.2026.115358
DO - 10.1016/j.wasman.2026.115358
M3 - 文章
C2 - 41579695
AN - SCOPUS:105028355419
SN - 0956-053X
VL - 213
JO - Waste Management
JF - Waste Management
M1 - 115358
ER -