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Mosaic Nanocrystalline Graphene Skin Empowers Highly Reversible Zn Metal Anodes

Xianzhong Yang, Jiaze Lv, Cai Cheng, Zixiong Shi, Jun Peng, Ziyan Chen, Xueyu Lian, Weiping Li, Yuhan Zou, Yu Zhao, Mark H. Rümmeli, Shi Xue Dou, Jingyu Sun

2022Advanced Science55 citationsDOIOpen Access PDF

Abstract

Abstract Constructing a conductive carbon‐based artificial interphase layer (AIL) to inhibit dendritic formation and side reaction plays a pivotal role in achieving longevous Zn anodes. Distinct from the previously reported carbonaceous overlayers with singular dopants and thick foreign coatings, a new type of N/O co‐doped carbon skin with ultrathin feature (i.e., 20 nm thickness) is developed via the direct chemical vapor deposition growth over Zn foil. Throughout fine‐tuning the growth conditions, mosaic nanocrystalline graphene can be obtained, which is proven crucial to enable the orientational deposition along Zn (002), thereby inducing a planar Zn texture. Moreover, the abundant heteroatoms help reduce the solvation energy and accelerate the reaction kinetics. As a result, dendrite growth, hydrogen evolution, and side reactions are concurrently mitigated. Symmetric cell harvests durable electrochemical cycling of 3040 h at 1.0 mA cm −2 /1.0 mAh cm −2 and 136 h at 30.0 mA cm −2 /30.0 mAh cm −2 . Assembled full battery further realizes elongated lifespans under stringent conditions of fast charging, bending operation, and low N/P ratio. This strategy opens up a new avenue for the in situ construction of conductive AIL toward pragmatic Zn anode.

Topics & Concepts

Materials scienceGrapheneAnodeChemical engineeringHeteroatomChemical vapor depositionNanocrystalline materialCarbon fibersNanotechnologyDendrite (mathematics)ElectrodeComposite materialComposite numberChemistryOrganic chemistryEngineeringGeometryPhysical chemistryMathematicsRing (chemistry)Advanced battery technologies researchAdvanced Battery Materials and Technologies
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