反铁磁性
反平行(数学)
化学
未成对电子
顺磁性
还原(数学)
自旋(空气动力学)
化学物理
结晶学
电子转移
氮气
自旋态
电子
单电子还原
配位复合体
铁磁性
草酸
配体(生物化学)
光化学
作者
Xiaoran Chen,Hongyu Jiang,Jianhua Chen,Di Huang,Weigang Wang,Maofa Ge,Jikun Li,Meng Li,Chuncheng Chen,Hong He,Jincai Zhao
标识
DOI:10.1002/anie.202512391
摘要
Abstract NO 2 reduction plays a key role in the active nitrogen cycle, influencing atmospheric oxidation capacity and secondary aerosol formation. NO 2 reduction is commonly believed to proceed via a single‐electron reduction pathway, yielding NO 2 − or HONO as primary products. Here, we report that oxalate‐bridged binuclear Fe(II) complex can lead to the two‐electron reduction of NO 2 directly to NO, while the citrate‐coordinated Fe(II) primarily reduces NO 2 to HONO through the common single‐electron reduction pathway. We systematically compare the coordination and magnetic properties between this oxalate‐bridged Fe(II) complex with the citrate‐coordinated one. Unlike the paramagnetic Fe(II) citrate complex with disordered Fe spin alignments, the oxalate‐bridged binuclear Fe(II) complex exhibits antiferromagnetic interactions with antiparallel spin alignments of the unpaired electrons between the two Fe(II) centers. We propose that such antiferromagnetic interactions facilitate the concerted transfer of the two electrons with antiparallel spin alignments from each Fe(II) centers in the oxalate‐bridged Fe(II) complex to the empty lowest unoccupied molecular orbital (LUMO) of NO 2 , leading to NO formation. Our findings reveal, for the first time, a two‐electron reduction pathway of NO 2 by the oxalate‐bridged binuclear Fe(II) complex formed from environmentally abundant iron oxides and oxalic acid, providing new insights into the active nitrogen cycling.
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