A polymer tethering strategy to achieve high metal loading on catalysts for Fenton reactions.

Wang, Lixin; Rao, Longjun; Ran, Maoxi; Shentu, Qikai; Wu, Zenglong; Song, Wenkai; Zhang, Ziwei; Li, Hao et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

The development of heterogenous catalysts based on the synthesis of 2D carbon-supported metal nanocatalysts with high metal loading and dispersion is important. However, such practices remain challenging to develop. Here, we report a self-polymerization confinement strategy to fabricate a series of ultrafine metal embedded N-doped carbon nanosheets (M@N-C) with loadings of up to 30 wt%. Systematic investigation confirms that abundant catechol groups for anchoring metal ions and entangled polymer networks with the stable coordinate environment are essential for realizing high-loading M@N-C catalysts. As a demonstration, Fe@N-C exhibits the dual high-efficiency performance in Fenton reaction with both impressive catalytic activity (0.818 min<sup>-1</sup>) and H<sub>2</sub>O<sub>2</sub> utilization efficiency (84.1%) using sulfamethoxazole as the probe, which has not yet been achieved simultaneously. Theoretical calculations reveal that the abundant Fe nanocrystals increase the electron density of the N-doped carbon frameworks, thereby facilitating the continuous generation of long-lasting surface-bound <sup>•</sup>OH through lowering the energy barrier for H<sub>2</sub>O<sub>2</sub> activation. This facile and universal strategy paves the way for the fabrication of diverse high-loading heterogeneous catalysts for broad applications.