Wenqiang Zhao, Wushan Sun, Yuansheng Bai, Chen Li, Qingyin Wang, G WANG
ABSTRACT This study reports the synthesis of nitrogen‐doped hierarchical porous carbons (NHPC) derived from nitrogen‐containing biomass precursors (glucosamine hydrochloride/chitosan) through urea/sodium bicarbonate co‐activation. Critically, biomass‐derived NHPC carriers exhibit substantially enhanced surface areas (2,535 m 2 g −1 ) and reduced microporous volumes (0.13 cm 3 g −1 ) compared to conventional carbon supports, attributed to heteroatom self‐doping effects and gas‐evolving activation mechanisms. Systematic optimization of calcination parameters (500°C–900°C; 3°C–10°C/min; 0.5–3 h) and copper loading (5–10 wt%) yielded the optimal 5Cu/10NHPC GAH ‐1‐800 catalyst. The unique pore architecture features: (i) Expanded mesopore channels facilitating reactant diffusion, (ii) Diminished microporous volume minimizing mass transfer barriers, and (iii) Nitrogen‐anchoring sites stabilizing copper nanoparticles. In DMC synthesis, this catalyst delivered 17.26% methanol conversion and DMC space‐time yield of 24.54 g·(g·h) −1 for copper‐based systems. The biomass‐NHPC supports structural advantages conferred exceptional stability—retaining 60% initial activity after 10 cycles. The reduced microporosity and maximized meso/macropore network directly suppressed coke deposition while enabling efficient copper dispersion, as verified by SEM/TEM pore distribution analyses. This work establishes nitrogen‐rich biomass as superior precursor for engineering mass‐transfer‐optimized catalyst supports, resolving persistent challenges in non‐corrosive DMC production.