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◆ Journal of the American Chemical Society2026-05-12· Chemistry

Molecular Crystal Sponge for Extraordinary NH <sub>3</sub> Capture

Xiangyu Gao, Yijin Wang, Wei Chen, Dong Fan, Pengfu Gao, Yunbo Bi, Xiyu Song, Chen Wang, Yuehua Chen, Guillaume Maurin, Dongyuan Zhao, Wei Gong, Banglin Chen, Peng Li

原始摘要(英文原文)· Original abstract
Ammonia is a chemical commodity in high demand that is produced primarily via the Haber–Bosch process. The low equilibrium single-pass conversion of this over 100-year-old process necessitates the refrigeration condensation removal of ammonia to increase the overall hydrogen yield, which has consumed a massive amount of energy. Developing highly efficient ammonia adsorbents to replace the condensation process is the key to realizing sustainable ammonia synthesis. Here, we report a soft hydrogen-bonded molecular crystal built solely from a very simple, easily available, and economical molecule of benzene-1,2,4,5-tetracarboxylic acid. This material exhibits an unusual sponge-like stoichiometric sorption behavior to capture ammonia with extraordinary performances with respect to low concentration uptake capacity (15.1 mmol g –1 at 10 mbar and 298 K), long-term stability, and industrial practicability, outperforming those of reported materials for this purpose. Breakthrough experiments confirm the excellence of this material for recovering captured NH 3 with ultrahigh purity (≥99.9998%) under both dry and wet conditions. Detailed single-crystal and in situ powder X-ray diffraction (PXRD) analyses, coupled with modeling, unequivocally decipher the charge-assisted hydrogen bonding between ammonia and carboxylic acid moieties in driving stepwise pore expansion. This work thus provides a conceptual blueprint of engineering soft molecular crystals for driving selective ammonia capture and energy-efficient ammonia production.
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