Chen Ming, Fu Wei, Hou Chunchao, Zhu Yunhai, Meng Fanlu
School of Materials Science and Engineering, Ocean University of China, Qingdao, 266404, China.
State Key Laboratory of New Textile Materials and Advanced Processing Technologies, Wuhan Textile University, Wuhan, 430200, China.
Small. 2024 Nov;20(44):e2403724. doi: 10.1002/smll.202403724. Epub 2024 Jul 14.
The inherent benefits of aqueous Zn-ion batteries (ZIBs), such as environmental friendliness, affordability, and high theoretical capacity, render them promising candidates for energy storage systems. Nevertheless, the Zn anodes of ZIBs encounter severe challenges, including dendrite formation, hydrogen evolution reaction, corrosion, and surface passivation. These would result in the infeasibility of ZIBs in practical situations. To this end, artificial interfaces with functionalized materials are crafted to protect the Zn anode. They have the capability to modulate the zinc ion flux in proximity to the electrode surface and shield it from aqueous electrolytes by leveraging either size effects or charge effects. Considering metal-organic frameworks (MOFs) with tunable pore size, chemical composition, and stable framework structures, they have emerged as effective materials for building artificial interfaces, prolonging the lifespan, and improving the unitization of Zn anode. In this review, the contributions of MOFs for protecting Zn anode, which mainly involves facilitating homogeneous nucleation, manipulating selective deposition, regulating ion and charge flux, accelerating Zn desolvation, and shielding against free water and anions are comprehensively summarized. Importantly, the future research trajectories of MOFs for the protection of the Zn anode are underscored, which may propose new perspectives on the practical Zn anode and endow the MOFs with high-value applications.
水系锌离子电池(ZIBs)具有环境友好、成本低廉和理论容量高等固有优势,使其成为储能系统的理想候选者。然而,ZIBs的锌负极面临严峻挑战,包括枝晶形成、析氢反应、腐蚀和表面钝化。这些问题将导致ZIBs在实际应用中不可行。为此,人们制备了具有功能化材料的人工界面来保护锌负极。它们能够通过利用尺寸效应或电荷效应来调节电极表面附近的锌离子通量,并使其与水性电解质隔离。考虑到金属有机框架(MOFs)具有可调的孔径、化学成分和稳定的框架结构,它们已成为构建人工界面、延长锌负极寿命和提高其性能的有效材料。在这篇综述中,全面总结了MOFs对保护锌负极的贡献,主要包括促进均匀成核、控制选择性沉积、调节离子和电荷通量、加速锌去溶剂化以及屏蔽游离水和阴离子。重要的是,强调了MOFs在保护锌负极方面未来的研究方向,这可能为实际的锌负极提出新的观点,并赋予MOFs高价值的应用。