Bimetallic nanozyme of Cu–Mn organophyllosilicate with enhanced multi-enzyme mimetic activity for simultaneous degradation of hydroquinone and methylene blue†
Rui Lv, Beibei He, Shiyong Sun, Ke Wang, Sen Lin, Elena Leonidovna Kotova, Jin Liu and Haoming Tang
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引用次数: 0
Abstract
The rational design and construction of high-performance, eco-friendly nanocatalysts for the degradation of organic compounds has been a growing concern in the field of environmental remediation. Herein, instigated by the active centers of laccase and manganese peroxidase, a bimetallic Cu–Mn organophyllosilicate (CAMCP) nanozyme was constructed for the removal of organic dyes. The simultaneous display of multi-enzyme-like activities (laccase-like, oxidase-like, and peroxidase-like) and exceptional catalytic stability under harsh conditions were verified. Specifically, CAMCP exhibits switchable peroxidase/oxidase-like activity due to the non-interfering catalytic activities of Cu and Mn. Moreover, the mechanism indicated that the synergistic effect of Mn and Cu improved the conversion between Cu2+ and Cu+, facilitating nanozyme activity. Subsequently, CAMCP catalytic decolorization of methylene blue (MB) was performed using hydroquinone (HQ) as the mediator. In contrast to the quinone redox cycling mechanism, hydroquinone acted not only as an electron donor that indirectly accelerated the cycling of Cu2+/Cu+ but also as a substrate that could be degraded simultaneously during the process. Consequently, the decolorization rate of MB was calculated as 92% within 60 min, whereas HQ was degraded to 70% within 90 min, thereby avoiding environmental pollution. This strategy provides a simplistic and highly efficient route for the rational construction of multi-enzyme-mimetic nanozymes and paves the way for the removal of organic pollutants from aqueous environments.
期刊介绍:
Environmental Science: Nano serves as a comprehensive and high-impact peer-reviewed source of information on the design and demonstration of engineered nanomaterials for environment-based applications. It also covers the interactions between engineered, natural, and incidental nanomaterials with biological and environmental systems. This scope includes, but is not limited to, the following topic areas:
Novel nanomaterial-based applications for water, air, soil, food, and energy sustainability
Nanomaterial interactions with biological systems and nanotoxicology
Environmental fate, reactivity, and transformations of nanoscale materials
Nanoscale processes in the environment
Sustainable nanotechnology including rational nanomaterial design, life cycle assessment, risk/benefit analysis