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Updated: Aug 13, 2026

Ammonia Synthesis at Low Pressure
Published on: August 23, 2017
Rigidity-Flexibility Integrated Porous Coordination Polymers via Lattice-Confined Adaptive Evolution for Efficient
Ziqian Xue1,2, Maryam Nurhuda1, Takefumi Yoshida3
1Institute for Integrated Cell-Material Sciences, Institute for Advanced Study, Kyoto University, Kyoto, Japan.
None:
Adaptive catalytic systems hold significant potential for designing electrocatalysts with both high activity and stability. However, achieving a balance between structural robustness and dynamic adaptability remains challenging. Herein, we report a new design strategy for self-adaptive electrocatalysts for boosting the electrosynthesis of ammonia by integrating a rigid framework with flexible coordination bonds within a porous coordination polymer (PCP). A rigid-flexible coupling copper pyrazole-based PCP, referred to as Cu-pyNDI, is designed to function as a self-adaptive electrocatalyst that exhibits both structural robustness and dynamic adaptability. Operando x-ray absorption spectroscopy (XAS) reveals that during the reaction, the copper sites in Cu-pyNDI undergo reversible local structural restructuring, resulting in the formation of lower-valence Cu, which serves as potentially active species. Building on the operando XAS findings, we introduced iron doping into Cu-pyNDI to modulate the self-regulating behavior of copper by enhancing the formation of low-valence copper species with lower coordination numbers, which serve as potential active centers, thereby facilitating the generation of the *NO2 intermediate. Consequently, Fe0.25Cu0.75-pyNDI demonstrated improved electrocatalytic performance, achieving a Faradaic efficiency of 93% and an ammonia yield of 18847 µg h-1 mgcat -1 in neutral electrolytes, comparable to state-of-the-art electrocatalysts.
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