3D Artificial Array Interface Engineering Enabling Dendrite-Free Stable Zn Metal Anode
Jianbin Ruan,Dingtao Ma,Kefeng Ouyang,Sicheng Shen,Ming-Hua Yang,Yanyi Wang,Jinlai Zhao,Hongwei Mi,Peixin Zhang +8 more
TL;DR: In this paper , a 3D open array interface was proposed to stabilize Zn metal anode and achieve volume stress elimination, preferred orientation growth and dendrite-free stable Zn-metal anode.
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Abstract: Abstract The ripple effect induced by uncontrollable Zn deposition is considered as the Achilles heel for developing high-performance aqueous Zn-ion batteries. For this problem, this work reports a design concept of 3D artificial array interface engineering to achieve volume stress elimination, preferred orientation growth and dendrite-free stable Zn metal anode. The mechanism of MXene array interface on modulating the growth kinetics and deposition behavior of Zn atoms were firstly disclosed on the multi-scale level, including the in-situ optical microscopy and transient simulation at the mesoscopic scale, in-situ Raman spectroscopy and in-situ X-ray diffraction at the microscopic scale, as well as density functional theory calculation at the atomic scale. As indicated by the electrochemical performance tests, such engineered electrode exhibits the comprehensive enhancements not only in the resistance of corrosion and hydrogen evolution, but also the rate capability and cyclic stability. High-rate performance (20 mA cm −2 ) and durable cycle lifespan (1350 h at 0.5 mA cm −2 , 1500 h at 1 mA cm −2 and 800 h at 5 mA cm −2 ) can be realized. Moreover, the improvement of rate capability (214.1 mAh g −1 obtained at 10 A g −1 ) and cyclic stability also can be demonstrated in the case of 3D MXene array@Zn/VO 2 battery. Beyond the previous 2D closed interface engineering, this research offers a unique 3D open array interface engineering to stabilize Zn metal anode, the controllable Zn deposition mechanism revealed is also expected to deepen the fundamental of rechargeable batteries including but not limited to aqueous Zn metal batteries.
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Citations
Covalent Organic Framework with 3D Ordered Channel and Multi-Functional Groups Endows Zn Anode with Superior Stability
Bin Li,Peng Ruan,Xieyu Xu,Zhangxing He,Xinyan Zhu,Liang Pan,Ziyu Peng,Yangyang Liu,Peng Zhou,Bingan Lu,Lei Dai,Jiang Zhou +11 more
TL;DR: Researchers develop a zinc anode with superior stability by creating a fluorinated covalent organic framework on its surface, which enhances ion transport, suppresses dendrite growth, and reduces side reactions, enabling stable cycling and high-capacity retention in zinc-ion batteries.
59
An Electrochemical Perspective of Aqueous Zinc Metal Anode
Huibo Yan,Dongmei Li,Jinyan Zhong,Bin Li +3 more
TL;DR: This review examines the electrochemical aspects of aqueous zinc-ion batteries, focusing on the chemistry of electrolytes, zinc anodes, and parasitic reactions, and proposes strategies to suppress these reactions for improved performance and lifespan.
46
Trace-Additive-Mediated Hydrophobic Structure Editing of Aqueous Zinc Metal Batteries for Enabling All-Climate Long-Term Operation
Kefeng Ouyang,Fan Li,Dingtao Ma,Yanyi Wang,Sicheng Shen,Ming-Hua Yang,Jimin Qiu,Wentao Wen,Ning Zhao,Hongwei Mi,Peixin Zhang +10 more
TL;DR: Researchers introduce a method to enhance aqueous zinc metal battery performance by adding a trifunctional polymer to reconstruct the Zn2+ solvated structure and create a hydrophobic interface, enabling long-term operation in various climates.
36
In Situ Electrochemically‐Bonded Self‐Adapting Polymeric Interface for Durable Aqueous Zinc Ion Batteries
Ying Zhang,Yaxin Zhang,Jie Deng,Rongrong Xue,Shancheng Yang +4 more
TL;DR: In situ electrochemically-bonded self-adapting polymeric interface for durable aqueous zinc ion batteries enhances reversible zinc electrodes and boosts battery performance.
32
Arrays of Hierarchical Zincophilic Nanorods with Trapping‐and‐Leveling Deposition for Ultrastable Zn Metal Anodes
Cong Tian,Hongfei Wang,Liyan Xie,Yijun Zhong,Yong Hu +4 more
TL;DR: Arrays of hierarchical zincophilic nanorods with trapping‐and‐leveling deposition for ultrastable Zn metal anodes enhance the cycling performance of rechargeable aqueous zinc‐ion batteries by stabilizing zinc deposition and homogenizing ionic fluxes.
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