TY - JOUR
T1 - Synergistic multi-electron/proton transfer in Cu4POM@MOF composite boosts ammonia generation
AU - Gong, Ning
AU - Li, Shuyu
AU - Wang, Linhua
AU - Wu, Xiaotian
AU - Chen, Ge
AU - Liu, Guangyang
AU - Yang, Luming
AU - Niu, Yi
AU - Yao, Liao Yuan
AU - Xu, Donghui
AU - Qin, Lin
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/10/1
Y1 - 2026/10/1
N2 - Ammonia synthesis with highly catalytic efficiency remains a fundamental challenge due to the kinetically demanding multi-electron/proton transfer. We address this by designing cooperative Cu-substituted sandwich-type polyoxometalate embedded in photoactive MOF (Cu4POM@NU1000) with varied loadings, which synergistically merges efficient light harvesting, multi-electron storage, transition metals and proton transfer in one architecture. Preliminary study reveals that higher Cu4POM loading enhanced the photocatalytic N2 fixation ability. Thus, 1.41-Cu4POM@NU1000 composite was selected for systematic evaluation of photocatalytic performance. Under visible light irradiation in pure water, it exhibited an ammonia generation rate 1.8 times of the NU1000 alone while maintaining stability. In-situ spectroscopic and trapping experiments reveal that the embedded Cu4POM acts as electron sponges and proton-coupled redox mediator, concurrently accelerating water photo-oxidation (providing H+) and promoting the sequential hydrogenation of adsorbed N2. DFT calculations further proved and highlighted the advantage of Cu4POM in driving hydrogenation of adsorbed N2 and the desorption of NH3 while NU1000 facilitates the initial N2 adsorption process. Finally, a seven-day outdoor experiment utilizing natural sunlight and atmospheric nitrogen confirmed this promising strategy toward green ammonia production for agricultural use.
AB - Ammonia synthesis with highly catalytic efficiency remains a fundamental challenge due to the kinetically demanding multi-electron/proton transfer. We address this by designing cooperative Cu-substituted sandwich-type polyoxometalate embedded in photoactive MOF (Cu4POM@NU1000) with varied loadings, which synergistically merges efficient light harvesting, multi-electron storage, transition metals and proton transfer in one architecture. Preliminary study reveals that higher Cu4POM loading enhanced the photocatalytic N2 fixation ability. Thus, 1.41-Cu4POM@NU1000 composite was selected for systematic evaluation of photocatalytic performance. Under visible light irradiation in pure water, it exhibited an ammonia generation rate 1.8 times of the NU1000 alone while maintaining stability. In-situ spectroscopic and trapping experiments reveal that the embedded Cu4POM acts as electron sponges and proton-coupled redox mediator, concurrently accelerating water photo-oxidation (providing H+) and promoting the sequential hydrogenation of adsorbed N2. DFT calculations further proved and highlighted the advantage of Cu4POM in driving hydrogenation of adsorbed N2 and the desorption of NH3 while NU1000 facilitates the initial N2 adsorption process. Finally, a seven-day outdoor experiment utilizing natural sunlight and atmospheric nitrogen confirmed this promising strategy toward green ammonia production for agricultural use.
KW - Efficient multi-electron/proton transfer
KW - Hydroxyl radical generation
KW - Outdoor application
KW - Photocatalytic N fixation
KW - Transition-metal-substituted POM@MOF
UR - https://www.scopus.com/pages/publications/105045923655
U2 - 10.1016/j.cej.2026.179700
DO - 10.1016/j.cej.2026.179700
M3 - Article
AN - SCOPUS:105045923655
SN - 1385-8947
VL - 545
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 179700
ER -