Tao Ding, Shunjie Shu, Yichen Gong, Zhensong Xu, Wen Xu, J. Zhang, Lei Shi, Hui Sun, Yuehua Chen, Baitao Guo, Yujing Tan, Deliang Xu, Shu Zhang, Shaobin Wang, Hongqi Sun
Biomass waste utilization to produce desirable carbon-based catalysts opens new horizons for achieving carbon neutrality. Nevertheless, efficient manipulation of carbon support morphology and electronic structures of active sites remains a great challenge. By selecting adhesive-contained fiberboard waste as a C/N source and low-cost copper nitrate as a Cu donor, a well-designed carbon catalyst loaded with Cu atomic centers was constructed via a ZnCl 2 -assisted calcination strategy. Without adscititious N sources, the adhesive contributes to N doping into the carbon framework, further serving as Cu anchoring sites. Meanwhile, ZnCl 2 adoption introduces abundant hierarchical pores, significantly improving the available surface area to enhance N doping and Cu dispersion. The as-synthesized catalyst (Cu ACs/ a FC) exhibits impressive merits, such as a high specific surface area (∼1222 m 2 g –1 ), homogeneously dispersed Cu sites with robust Cu–N x configurations and tunable electronic structures, favorable surface hydrophilicity, and excellent electron migration, making it a promising candidate for catalytic reduction of nitroarenes and azo dyes. Taking 4-nitrophenol (4-NP) conversion into a high-value-added chemical (4-aminophenol) as an example, an impressive catalytic performance with a high TOF of 100.26 h –1 (∼2.1-fold that of its counterpart of Cu nanoparticle catalyst), as well as excellent reusability and long-term stability of up to 200 h, is achieved. Particularly, an efficient hydrogenation reduction toward a series of 4-NP analogues and azo dyes is demonstrated, displaying a huge application potential. Through selecting diverse metal precursors, the proposed strategy could be generalized to construct various biochar-based catalysts for advanced hydrogenation reactions.