Yanghyun Cho, C. Y. An, Yeonjin Lee, Sang Wan Seo, Dayeong Gang, Junsu Son, Gyuri Kim, Minsu Gu, Tae Kyung Lee, Chi‐Ju Kim, Ji Sun Im, Seulki Song, Woo‐Jin Song
ABSTRACT The development of a protective layer that not only blocks parasitic reactions but also actively regulates Zn 2+ transport and nucleation behavior is critical for the advancement of aqueous zinc‐ion batteries (AZIBs). In this study, we propose a novel interfacial engineering strategy based on a zincophilic porous carbon (ZPC) coating, which provided selective Zn 2+ adsorption and directional Zn 2+ flux regulation. The ZPC layer composed of poly (acrylic acid) (PAA)‐grafted carboxymethyl cellulose (CMC) (CLP) and activated carbon (AC) synergistically integrates zincophilic functional groups and a porous structure. This design enables rapid Zn 2+ desolvation and effectively suppresses dendrite formation. The selective Zn 2+ affinity of the ZPC layer minimizes hydrogen evolution reaction (HER) and corrosion, while promoting preferential Zn deposition along the (002) crystallographic plane. As a result, ZPC@Zn exhibits an extended lifespan exceeding 3600 h at 4 mA cm −2 and stable Zn plating/stripping at a high depth of discharge (DOD, 43%). Full cells paired with an iodine cathode demonstrate excellent rate capability and outstanding cycle stability, maintaining approximately 90% capacity retention over 5000 cycles at 10 C. This work establishes a new paradigm in interfacial layer design and paves the way for dendrite‐free, high‐performance AZIBs.