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Lu X, Liu S, Zhang L, Ye S, Yue C, Feng Y, Zhou Y, Liang Z, Wang Y, Yang W, Shi Q. Nano-Scale ZrN Film Modified Zn Anode with Ultra-Long Cycle Life Over 5000 H. SMALL (WEINHEIM AN DER BERGSTRASSE, GERMANY) 2025; 21:e2502480. [PMID: 40116561 DOI: 10.1002/smll.202502480] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/25/2025] [Revised: 03/12/2025] [Indexed: 03/23/2025]
Abstract
Dendrite growth, corrosion, and hydrogen evolution are major issues for Zn anodes, which seriously hinder the further practical application of aqueous zinc-ion batteries. To address these issues, Zirconium Nitride (ZrN) layer with a thickness of 110 nm is uniformly deposited on the surface of Zn anode using plasma-enhanced atomic layer deposition (PE-ALD). In/ex situ characterizations verify that the as-introduced ZrN layer has excellent anticorrosive and zincophilic ability, which can suppress corrosion and hydrogen evolution, lower the nucleation energy barrier for Zn2+ deposition, and effectively inhibit dendrite growth. Theoretical calculations also reveal that ZrN exhibits significantly higher adsorption capacity for Zn2+ compared to bare Zn, which is conducive to regulating the Zn deposition behavior. This innovative interface significantly extends battery cycle life and enhances coulombic efficiency. Encouragingly, under a current density of 5 mA cm-2 and areal capacity of 1 mAh cm-2, the Zn@ZrN symmetrical cells demonstrate an extraordinary cycling life of up to 5000 h, significantly surpassing other reported Zn anodes modified by films/coatings. In addition, it also exhibits an impressive cycling life of 1200 h at 1 mA cm-2 and 1 mAh cm-2. The full cells of Zn@ZrN||MnO2 retain high capacity after 1000 cycles, markedly outperforming conventional Zn||MnO2 batteries.
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Affiliation(s)
- Xuyang Lu
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
- School of Material Science and Engineering, Taiyuan University of Science and Technology, Taiyuan, 030024, China
| | - Siling Liu
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Lei Zhang
- School of Material Science and Engineering, Taiyuan University of Science and Technology, Taiyuan, 030024, China
| | - Shaobo Ye
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Chenchen Yue
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Yufei Feng
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Yu Zhou
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Zhao Liang
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Ying Wang
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Weiyou Yang
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
| | - Qing Shi
- Institute of Micro/Nano Materials and Devices, Ningbo University of Technology, Ningbo, 315016, China
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Yuan J, Li Y, Ma Y, Ruan Y, He J, Xu H, Zhang Z, He G, Chen H. Suppression of Zinc Dendrite Growth by Enhanced Polyacrylamide Gel Electrolytes in Zinc-Ion Battery. Chem Asian J 2024:e202400812. [PMID: 39155272 DOI: 10.1002/asia.202400812] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/10/2024] [Revised: 08/12/2024] [Accepted: 08/17/2024] [Indexed: 08/20/2024]
Abstract
Aqueous zinc-ion batteries have become a promising energy storage battery due to high theoretical specific capacity, abundant zinc resources and low cost. However, zinc dendrite growth and hydrogen evolution reaction limit their application. This study aims to improve the cycling performance and stability of aqueous zinc-ion batteries by improving the gel electrolyte. Polyacrylamide (PAM) is selected as the base material of the gel electrolyte, which has good stability and safety, but the water retention capacity, Zn2+ migration number, and ionic conductivity of PAM are low, which affects the long-term stability of the battery. In response to these problems, we optimized PAM by chemical cross-linking method, and formed an enhanced PAM gel by adding disodium citrate dihydrate (SC). Experimental results show that the introduction of an appropriate amount of SC in the enhanced PAM gel electrolyte can significantly improve its electrochemical performance. The zinc-ion symmetric battery achieved a stable cycle of more than 2100 hours at a current density of 0.5 mA cm-2, which is mainly attributed to the inhibitory effect of the enhanced PAM gel on zinc dendrite growth and hydrogen evolution reaction. This study provides a new direction for the development and application of flexible zinc-ion batteries.
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Affiliation(s)
- Jingjing Yuan
- Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, China
| | - Yifan Li
- Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, China
| | - Yuqing Ma
- Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, China
| | - Yuan Ruan
- Changzhou Qiantai Medical Technology Co., Ltd., Changzhou, China
| | - Junjie He
- Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, China
| | - Hui Xu
- Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, China
| | | | - Guangyu He
- Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, China
| | - Haiqun Chen
- Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, China
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Peng Z, Yan H, Zhang Q, Liu S, Jun SC, Poznyak S, Guo N, Li Y, Tian H, Dai L, Wang L, He Z. Stabilizing Zinc Anode through Ion Selection Sieving for Aqueous Zn-Ion Batteries. NANO LETTERS 2024. [PMID: 39037888 DOI: 10.1021/acs.nanolett.4c00693] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 07/24/2024]
Abstract
Uncontrollable dendrite growth and corrosion induced by reactive water molecules and sulfate ions (SO42-) seriously hindered the practical application of aqueous zinc ion batteries (AZIBs). Here we construct artificial solid electrolyte interfaces (SEIs) realized by sodium and calcium bentonite with a layered structure anchored to anodes (NB@Zn and CB@Zn). This artificial SEI layer functioning as a protective coating to isolate activated water molecules, provides high-speed transport channels for Zn2+, and serves as an ionic sieve to repel negatively charged anions while attracting positively charged cations. The theoretical results show that the bentonite electrodes exhibit a higher binding energy for Zn2+. This demonstrates that the bentonite protective layer enhances the Zn-ion deposition kinetics. Consequently, the NB@Zn//MnO2 and CB@Zn//MnO2 full-battery capacities are 96.7 and 70.4 mAh g-1 at 2.0 A g-1 after 1000 cycles, respectively. This study aims to stabilize Zn anodes and improve the electrochemical performance of AZIBs by ion-selection sieving.
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Affiliation(s)
- Zhi Peng
- School of Chemical Engineering, North China University of Science and Technology, Tangshan 063009, China
| | - Hui Yan
- Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110000, China
| | - Qingqing Zhang
- School of Chemical Engineering, North China University of Science and Technology, Tangshan 063009, China
| | - Shude Liu
- Shanghai Frontiers Science Center of Advanced Textiles, College of Textiles, Donghua University, Shanghai 201620, China
| | - Seong Chan Jun
- School of Mechanical Engineering, Yonsei University, Seoul 120-749, South Korea
| | - Sergey Poznyak
- Research Institute for Physical Chemical Problems of the Belarusian State University, Minsk 220030, Belarus
| | - Na Guo
- School of Chemical Engineering, North China University of Science and Technology, Tangshan 063009, China
| | - Yuehua Li
- School of Chemical Engineering, North China University of Science and Technology, Tangshan 063009, China
| | - Huajun Tian
- Key Laboratory of Power Station Energy Transfer Conversion and System of Ministry of Education and School of Energy Power and Mechanical Engineering, and Beijing Laboratory of New Energy Storage Technology, North China Electric Power University, Beijing, 102206, China
| | - Lei Dai
- School of Chemical Engineering, North China University of Science and Technology, Tangshan 063009, China
| | - Ling Wang
- School of Chemical Engineering, North China University of Science and Technology, Tangshan 063009, China
| | - Zhangxing He
- School of Chemical Engineering, North China University of Science and Technology, Tangshan 063009, China
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Yuan J, Shi Y, Bian W, Wu H, Chen Y, Zhou C, Chen X, Zhang W, Shen H. Hydrous Molybdenum Oxide Coating of Zinc Metal Anode via the Facile Electrodeposition Strategy and Its Performance Improvement Mechanisms for Aqueous Zinc-Ion Batteries. Molecules 2024; 29:3229. [PMID: 38999181 PMCID: PMC11243360 DOI: 10.3390/molecules29133229] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/08/2024] [Revised: 06/27/2024] [Accepted: 07/05/2024] [Indexed: 07/14/2024] Open
Abstract
Aqueous zinc-ion batteries (ZIBs) are widely recognized as highly promising energy storage devices because of their inherent characteristics, including superior safety, affordability, eco-friendliness, and various other benefits. However, the significant corrosion of the zinc metal anode, side reactions occurring between the anode and electrolyte, and the formation of zinc dendrites significantly hinder the practical utilization of ZIBs. Herein, we utilized an electrodeposition method to apply a unique hydrous molybdenum oxide (HMoOx) layer onto the surface of the zinc metal anode, aiming to mitigate its corrosion and side reactions during the process of zinc deposition and stripping. In addition, the HMoOx layer not only improved the hydrophilicity of the zinc anode, but also adjusted the migration of Zn2+, thus facilitating the uniform deposition of Zn2+ to reduce dendrite formation. A symmetrical cell with the HMoOx-Zn anode displayed reduced-voltage hysteresis (80 mV at 2.5 mA/cm2) and outstanding cycle stability after 3000 cycles, surpassing the performance of the uncoated Zn anode. Moreover, the HMoOx-Zn anode coupled with a γ-MnO2 cathode created a considerably more stable rechargeable full battery compared to the bare Zn anode. The HMoOx-Zn||γ-MnO2 full cell also displayed excellent cycling stability with a charge/discharge-specific capacity of 129/133 mAh g-1 after 300 cycles. In summary, this research offers a straightforward and advantageous approach that can significantly contribute to the future advancements in rechargeable ZIBs.
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Affiliation(s)
- Jianwei Yuan
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Yutao Shi
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Weibai Bian
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Huaren Wu
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Yingjun Chen
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Chengcheng Zhou
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Xiaohui Chen
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Wei Zhang
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
| | - Hailin Shen
- School of Chemical Engineering and Materials, Changzhou Institute of Technology, Changzhou 213022, China
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Zhao K, Sheng J, Luo N, Ding J, Luo H, Jia X, Wang S, Fang S. Boosting the reversibility of Zn anodes via synergistic cation-anion interface adsorption with addition of multifunctional potassium polyacrylate. J Colloid Interface Sci 2024; 664:816-823. [PMID: 38492383 DOI: 10.1016/j.jcis.2024.02.192] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/04/2024] [Revised: 01/25/2024] [Accepted: 02/27/2024] [Indexed: 03/18/2024]
Abstract
Rechargeable aqueous Zn batteries have the edge in resource reserve, cost, energy and conversion efficiency due to the inherent features of metal Zn anodes. However, the application of Zn-based batteries is being seriously hindered by Zn dendrites and water-induced side-reactions. Here, potassium polyacrylate (K-PAM) is proposed as the electrolyte additive to form a synergistic cation-anion interface on Zn surface. The carboxyl anions and K+ cations are preferentially adsorbed on the Zn surface due to the intrinsic surfactant characteristics, which could homogenize Zn plating and suppress parasitic reactions. The synergistic regulation of K-PAM additive endows the ZnZn symmetric cells with excellent cyclic durability of 1250 h at 1 mA cm-2, which is significantly better than the polyacrylic acid additive only with carboxyl anions. Moreover, trace K-PAM addition into traditional ZnSO4 electrolyte endows the ZnCu batteries with a considerable average Coulombic efficiency of 99.2 %. Additionally, higher capacity retention and excellent cycling stability of ZnVO2 cells further mark K-PAM as a potentially impressive aqueous electrolyte additive for high-performance Zn-based batteries. This work will provide a promising method for the synergistic regulation with cations and anions of electrolyte additives to improve the stability and reversibility of Zn anodes.
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Affiliation(s)
- Kang Zhao
- College of New Energy, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China
| | - Jinhu Sheng
- College of Materials and Chemical Engineering, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China
| | - Nairui Luo
- College of Materials and Chemical Engineering, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China
| | - Junwei Ding
- College of New Energy, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China
| | - Hewei Luo
- College of New Energy, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China
| | - Xiaodong Jia
- College of New Energy, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China
| | - Shiwen Wang
- College of New Energy, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China.
| | - Shaoming Fang
- College of Materials and Chemical Engineering, Zhengzhou University of Light Industry, Zhengzhou 450002, PR China.
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