Al Pinning Effect in Birnessite for High‐Performance Ammonium‐Ion Storage
作者:Chao Cheng, Shuyang Bian, Yurong You, Qiang Liu, Zhuoying Yang, Fei Ye, Wenshu Chen, Jun Cheng, Xuecheng Chen, Zilong Tang, Kongjun Zhu, Yuping Wu, Linfeng Hu · 发表于:Advanced Materials · 年份:2025 · DOI:10.1002/adma.202512356 · 被引用次数:7 · 研究领域:Advanced battery technologies research、Supercapacitor Materials and Fabrication、Advancements in Battery Materials
Abstract Layered birnessite has attracted considerable attention for its cathode potential in various aqueous energy storage devices owing to its two‐electron transfer reaction (Mn 2+ /Mn 4+ ), open diffusion channels, and tunable interlayer spacings. However, birnessite for reversible ammonium (NH 4 + ) ion storage generally suffers from irreversible structural collapse originated from Jahn–Teller (J–T) effect of Mn 3+ and the intrinsic slow ionic diffusion kinetics. Herein, an Al pinning effect in birnessite is found to address these two issues simultaneously, which promoted enhanced structural stability and resulted in fast ionic diffusion kinetics for excellent high‐rate capability. Strikingly, a robust cycling stability over 5, 000 cycles at 1.0 A g −1 is achieved in the optimal Na 0.7 Al 0.1 Mn 0.9 O 2 , which surpasses that of most previously reported ammonium‐ion batteries. Density functional theory calculations revealed that the pinned [Al 3+ O 6 ] octahedra not only decrease the Mn 3+ content in birnessite, but also strengthen the covalency of Mn─O bonds to resist the collinear elongation/compression direction of the [Mn 3+ O 6 ] octahedra. Furthermore, Al pinning in birnessite can increase the interlayer spacing due to the regulation of Mn 3+ ─O/Mn 4+ ─O bond length and decrease the diffusion barrier for NH 4 + ion in the interlayer of birnessite. Thus, an accelerated NH 4 + ion diffusion coefficient of 1.58 × 10 −9 cm 2 s −1 has been achieved, which is ≈5 times hi...