成核
材料科学
法拉第效率
阳极
化学工程
锌
电极
化学物理
碳纤维
过电位
表面能
纳米技术
相间
生物量(生态学)
析氧
工作(物理)
水溶液
剥离(纤维)
电偶阳极
纤维素
涂层
单层
作者
Chengnuo Zhao,Changlai Wang,Haichao Huang,Derek Ho,Guojin Liang,Haibo Hu
摘要
ABSTRACT The energy efficiency of aqueous zinc‐iodine flow batteries (AZIFBs) is constrained by unstable Zn electrodeposition/stripping at the anode, originating from inhomogeneous interfacial mass/charge transport and mismatched energy barriers for zinc nucleation vs. growth. Herein, we report a coordination‐bond‐mediated interfacial engineering strategy that directly regulates Zn 2 + transport and nucleation at the molecular level. A conformal, bio‐derived interphase is constructed on oxygen plasma–activated carbon felt (CF) by immobilizing carboxyl‐functionalized bacterial cellulose (C‐BC) through interfacial hydrogen bonding. The C‐BC coating uniformly enriches the electrode surface with ─COO − groups, which act as spatially distributed zincophilic anchoring sites. At the electrode–electrolyte interface, deprotonated carboxylates undergo ligand‐exchange reactions with [Zn(H 2 O) 6 ] 2 + species to form stable Zn─O coordination bonds. This coordination interaction locally redistributes electron density around Zn 2 + , disrupts its hydration shell, and lowers both the desolvation barrier and the critical nucleation free energy (ΔG*), thereby homogenizing zinc nucleation and suppressing dendritic growth. Thus, AZIFBs employing C‐BC@CF anodes deliver a cumulative capacity of 72 Ah at 40 mA cm − 2 /20 mAh cm − 2 , with an average Coulombic efficiency of 98.7%, voltage efficiency of 70.3%, and energy efficiency of 68.3% over 900 cycles. This work establishes coordination‐bond‐mediated biomass interfaces as a scalable and cost‐effective paradigm for overcoming anode limitations in AZIFBs.
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