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Regulation of Zn^(2+) solvation shell by a novel N-methylacetamide based eutectic electrolyte toward high-performance zinc-ion batteries 被引量:1
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作者 Yong Liu Kaijia Feng +7 位作者 Junmei Han Fei Wang Yibo Xing Feng Tao Haoming Li Binrui Xu Jiangtao Ji Hongxia Li 《Journal of Materials Science & Technology》 2025年第8期53-61,共9页
Aqueous Zn-ion batteries(AZIBs)have been regarded as promising alternatives to Li-ion batteries due to their advantages,such as low cost,high safety,and environmental friendliness.However,AZIBs face significant challe... Aqueous Zn-ion batteries(AZIBs)have been regarded as promising alternatives to Li-ion batteries due to their advantages,such as low cost,high safety,and environmental friendliness.However,AZIBs face significant challenges in limited stability and lifetime owing to zinc dendrite growth and serious side reactions caused by water molecules in the aqueous electrolyte during cycling.To address these issues,a new eutectic electrolyte based on Zn(ClO_(4))_(2)·6H_(2)O-N-methylacetamide(ZN)is proposed in this work.Compared with aqueous electrolyte,the ZN eutectic electrolyte containing organic N-methylacetamide could regulate the solvated structure of Zn^(2+),effectively suppressing zinc dendrite growth and side reactions.As a result,the Zn//NH4 V4 O10 full cell with the eutectic ZN-1-3 electrolyte demonstrates significantly enhanced cycling stability after 1000 cycles at 1 A g^(-1).Therefore,this study not only presents a new eutectic electrolyte for zinc-ion batteries but also provides a deep understanding of the influence of Zn^(2+)solvation structure on the cycle stability,contributing to the exploration of novel electrolytes for high-performance AZIBs. 展开更多
关键词 Zinc-ion batteries Eutectic electrolyte zn dendrites Suppressed side reactions zn^(2+)solvation structure Electrochemical performance
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Recent Advances in Aqueous Zn||MnO_(2)Batteries 被引量:1
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作者 Chuan Li Rong Zhang +3 位作者 Huilin Cui Yanbo Wang Guojin Liang Chunyi Zhi 《Transactions of Tianjin University》 EI CAS 2024年第1期27-39,共13页
Recently,rechargeable aqueous zinc-based batteries using manganese oxide as the cathode(e.g.,MnO_(2))have gained attention due to their inherent safety,environmental friendliness,and low cost.Despite their potential,a... Recently,rechargeable aqueous zinc-based batteries using manganese oxide as the cathode(e.g.,MnO_(2))have gained attention due to their inherent safety,environmental friendliness,and low cost.Despite their potential,achieving high energy density in Zn||MnO_(2)batteries remains challenging,highlighting the need to understand the electrochemical reaction mechanisms underlying these batteries more deeply and optimize battery components,including electrodes and electrolytes.This review comprehensively summarizes the latest advancements for understanding the electrochemistry reaction mechanisms and designing electrodes and electrolytes for Zn||MnO_(2)batteries in mildly and strongly acidic environments.Furthermore,we highlight the key challenges hindering the extensive application of Zn||MnO_(2)batteries,including high-voltage requirements and areal capacity,and propose innovative solutions to overcome these challenges.We suggest that MnO_(2)/Mn^(2+)conversion in neutral electrolytes is a crucial aspect that needs to be addressed to achieve high-performance Zn||MnO_(2)batteries.These approaches could lead to breakthroughs in the future development of Zn||MnO_(2)batteries,off ering a more sustainable,costeff ective,and high-performance alternative to traditional batteries. 展开更多
关键词 Aqueous zn||mno_(2)batteries Zinc-ion batteries Zinc batteries mno_(2)
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用于水系锌离子电池的富氧缺陷α-MnO_(2)电极材料的制备及其性能研究
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作者 韩洋 樊姗 +3 位作者 戴勤进 严宇琪 樊鹏阳 郑晓英 《化工新型材料》 北大核心 2025年第5期155-159,166,共6页
电导率差,不可逆的结构转变和缓慢的反应动力学限制了MnO_(2)在水系锌离子电池中的应用。采用水热法制备了具有富氧缺陷的α-MnO_(2)电极材料。富氧缺陷的α-MnO_(2)电极优化了电子结构,增加了材料表面活性位点,提高了正极材料的电化学... 电导率差,不可逆的结构转变和缓慢的反应动力学限制了MnO_(2)在水系锌离子电池中的应用。采用水热法制备了具有富氧缺陷的α-MnO_(2)电极材料。富氧缺陷的α-MnO_(2)电极优化了电子结构,增加了材料表面活性位点,提高了正极材料的电化学性能。以α-MnO_(2)为正极材料组装的水系锌离子电池在电流密度0.1A/g条件下放电比容量高达210.47mAh/g,容量保持率为122.6%,表现出优异的电化学性能和循环稳定性。 展开更多
关键词 水系锌离子电池 氧缺陷 α-mno_(2) 电化学活性 倍率性能
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PAM基复合水凝胶电解质的制备及其在Zn-MnO_(2)电池中的应用 被引量:3
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作者 季善果 袁鲁宁 +4 位作者 徐加虎 秦硕 胡媛媛 于鸿达 杨凯 《工程科学学报》 EI CSCD 北大核心 2024年第1期89-96,共8页
水系锌离子电池具有低成本、安全、环保等优点,在规模化储能和智能可穿戴方面极具应用前景.提高其循环稳定性以及循环寿命是实现水系锌离子电池进一步应用的关键问题之一.本工作采用二维层状蒙脱土(MMT)和丙烯酰胺单体,通过两步法合成... 水系锌离子电池具有低成本、安全、环保等优点,在规模化储能和智能可穿戴方面极具应用前景.提高其循环稳定性以及循环寿命是实现水系锌离子电池进一步应用的关键问题之一.本工作采用二维层状蒙脱土(MMT)和丙烯酰胺单体,通过两步法合成了具有三维网状结构的蒙脱土-聚丙烯酰胺水凝胶电解质(Montmorillonite-polyacrylamide hydrogel,MMT-PAM).蒙脱土的加入为丙烯酰胺单体的原位聚合提供了吸附位点,并通过MMT和PAM高分子链之间的氢键作用显著提高了水凝胶的机械性能,抑制了锌枝晶生长(在0.5 mA·cm^(-1)电流密度下稳定循环250 h).此外,蒙脱土表面丰富的负电荷为Zn2+的快速传输提供更多离子传输通道,提高其离子电导率(室温下为34 mS·cm^(-1)),赋予MMT-PAM水凝胶电解质更好的倍率性能和循环稳定性.基于上述优点,组装的水系Zn-MnO_(2)电池在0.2 A·g^(-1)的电流密度下提供了289 mA·h·g^(-1)的比容量,且可稳定循环2000次.此外,使用MMT-PAM水凝胶作为电解质制备的柔性电池在经过不同外界条件冲击下依然可正常工作,表现出了其在柔性电子领域的应用可行性. 展开更多
关键词 zn-mno_(2)电池 水凝胶电解质 蒙脱土 循环稳定性 机械强度 柔性电池
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Plasma-assisted aerogel interface engineering enables uniform Zn^(2+)flux and fast desolvation kinetics toward zinc metal batteries 被引量:1
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作者 Zijian Xu Zhenhai Shi +7 位作者 Zhan Chang Fan Feng Zhuanyi Liu Dongkun Chu Jianguo Ren Zi-Feng Ma Suli Chen Tianxi Liu 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2024年第8期29-38,I0002,共11页
The poor reversibility of Zn anodes induced by dendrite growth,surface passivation,and corrosion,severely hinders the practical applicability of Zn metal batteries.To address these issues,a plasmaassisted aerogel(PAG)... The poor reversibility of Zn anodes induced by dendrite growth,surface passivation,and corrosion,severely hinders the practical applicability of Zn metal batteries.To address these issues,a plasmaassisted aerogel(PAG)interface engineering was proposed as efficient ion transport modulator that can simultaneously regulate uniform Zn^(2+)flux and desolvation behavior during battery operation.The PAG with ordered mesopores acted as an ion sieve to homogenize Zn deposition and accelerate Zn^(2+)flux,which is favorable for corrosion resistance and dendrite suppression.Importantly,the plasma-assisted aerogel with abundant hydrophilic groups can facilitate the desolvation kinetics of Zn^(2+)due to the multiple hydrogen-bonding interaction with the activated water molecules,thus accelerating the Zn^(2+)migration kinetics.Consequently,the Zn/Zn cell assembled with PAG-modified separator demonstrates stable plating and stripping behavior(over 1400 h at 1 mA cm^(-2))and high Coulombic efficiency(99.8%at1 mA cm^(-2)after 1100 cycles),and the Zn‖MnO_(2)full cell shows excellent long-term cycling stability and maintains a high capacity of 154.9 mA h g^(-1)after 1000 cycles at 1 A g^(-1).This study provides a feasible approach for the large-scale fabrication of aerogel functionalized separators to realize ultra-stable Zn metal batteries. 展开更多
关键词 zn metal batteries Aerogel interface Plasma zn^(2+)migration kinetics Dendrite growth
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Fe doping 1T phase MoS_(2)with enhanced zinc-ion storage ability and durability for high-performance aqueous zinc-ion batteries
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作者 Jing-Yi Liu Rong-Jie Zhe +5 位作者 Zhan-Hong Peng Yi-Hui Song Lin-Xuan Yang Chen Qing Jun-Ling Guo Jin-Ping Liu 《Rare Metals》 2025年第1期253-263,共11页
As a promising cathode material for aqueous zinc-ion batteries,1T-MoS_(2)has been extensively investigated because of its facile two-dimensional ion-diffusion channels and high electrical conductivity.However,the limi... As a promising cathode material for aqueous zinc-ion batteries,1T-MoS_(2)has been extensively investigated because of its facile two-dimensional ion-diffusion channels and high electrical conductivity.However,the limited number of available Zn storage sites,i.e.,limited capacity,hinders its application because the inserted Zn^(2+),which form strong electrostatic interactions with 1T-MoS_(2),preventing subsequent Zn^(2+)insertion.Currently,the approach of enlarging the interlayer distance to reduce electrostatic interactions has been commonly used to enhance the capacity and reduce Zn^(2+)migration barriers.However,an enlarged interlayer spacing can weaken the van der Waals force between 1T-MoS_(2)monolayers,easily disrupting the structural stability.Herein,to address this issue,an effective strategy based on Fe doping is proposed for 1T-MoS_(2)(Fe-1T-MoS_(2)).The theoretical calculations reveal that Fe doping can simultaneously moderate the rate of decrease in the adsorption energy after gradually increasing the number of stored atoms,and enhance the electron delocalization on metal-O bonds.Therefore,the experiment results show that Fe doping can simultaneously activate more Zn storage sites,thus enhancing the capacity,and stabilize the structural stability for improved cycling performance.Consequently,Fe-1T-MoS_(2)exhibits a larger capacity(189 mAh·g^(-1)at 0.1 A·g^(-1))and superior cycling stability(78%capacity retention after 400 cycles at 2 A·g^(-1))than pure 1T-MoS_(2).This work may open up a new avenue for constructing high-performance MoS_(2)-based cathodes. 展开更多
关键词 Aqueous zinc-ion battery 1T-MoS_(2) Fe doping More zn storage sites Enhanced structural stability
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Interfacial Zn^(2+)-solvation regulator towards reversible and stable Zn anode
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作者 Miao Zhou Xiongbin Luo +7 位作者 Hang Li Shan Guo Zhuang Tong Xiaotao Zhou Xu Li Zhaohui Hou Shuquan Liang Guozhao Fang 《Journal of Energy Chemistry》 2025年第1期684-692,共9页
Aqueous zinc-ion batteries (AZIBs) are fundamentally challenged by the instability of the electrode/electrolyte interface,predominantly due to irreversible zinc (Zn) deposition and hydrogen evolution.Particularly,the ... Aqueous zinc-ion batteries (AZIBs) are fundamentally challenged by the instability of the electrode/electrolyte interface,predominantly due to irreversible zinc (Zn) deposition and hydrogen evolution.Particularly,the intricate mechanisms behind the electrochemical discrepancies induced by interfacial Zn^(2+)-solvation and deposition behavior demand comprehensive investigation.Organic molecules endowed with special functional groups (such as hydroxyl,carboxyl,etc.) have the potential to significantly optimize the solvation structure of Zn^(2+)and regulate the interfacial electric double layer (EDL).By increasing nucleation overpotential and decreasing interfacial free energy,these functional groups facilitate a lower critical nucleation radius,thereby forming an asymptotic nucleation model to promote uniform Zn deposition.Herein,this study presents a pioneering approach by introducing trace amounts of n-butanol as solvation regulators to engineer the homogenized Zn (H-Zn) anode with a uniform and dense structure.The interfacial reaction and structure evolution are explored by in/ex-situ experimental techniques,indicating that the H-Zn anode exhibits dendrite-free growth,no by-products,and weak hydrogen evolution,in sharp contrast to the bare Zn.Consequently,the H-Zn anode achieves a remarkable Zn utilization rate of approximately 20% and simultaneously sustains a prolonged cycle life exceeding 500 h.Moreover,the H-Zn//NH_(4)V_(4)O^(10)(NVO) full battery showcases exceptional cycle stability,retaining 95.04%capacity retention after 400 cycles at a large current density of 5 A g^(-1).This study enlightens solvation-regulated additives to develop Zn anode with superior utilization efficiency and extended operational lifespan. 展开更多
关键词 Aqueous zinc-ion batteries zn^(2+)-solvation structure Interfacial reaction Asymptotic nucleation model Reversible and stable zn anode
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Novel Insights into Energy Storage Mechanism of Aqueous Rechargeable Zn/MnO2 Batteries with Participation of Mn2+ 被引量:18
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作者 Yongfeng Huang Jian Mou +4 位作者 Wenbao Liu Xianli Wang Liubing Dong Feiyu Kang Chengjun Xu 《Nano-Micro Letters》 SCIE EI CAS CSCD 2019年第3期227-239,共13页
Aqueous rechargeable Zn/MnO2 zinc-ion batteries(ZIBs)are reviving recently due to their low cost,non-toxicity,and natural abundance.However,their energy storage mechanism remains controversial due to their complicated... Aqueous rechargeable Zn/MnO2 zinc-ion batteries(ZIBs)are reviving recently due to their low cost,non-toxicity,and natural abundance.However,their energy storage mechanism remains controversial due to their complicated electrochemical reactions.Meanwhile,to achieve satisfactory cyclic stability and rate performance of the Zn/MnO2 ZIBs,Mn2+ is introduced in the electrolyte(e.g.,ZnSO4 solution),which leads to more complicated reactions inside the ZIBs systems.Herein,based on comprehensive analysis methods including electrochemical analysis and Pourbaix diagram,we provide novel insights into the energy storage mechanism of Zn/MnO2 batteries in the presence of Mn2+.A complex series of electrochemical reactions with the coparticipation of Zn2+,H+,Mn2+,SO42-,and OH-were revealed.During the first discharge process,co-insertion of Zn2+ and H+ promotes the transformation of MnO2 into ZnxMnO4,MnOOH,and Mn2O3,accompanying with increased electrolyte pH and the formation of ZnSO4·3 Zn(OH)2-5 H2O.During the subsequent charge process,ZnxMnO4,MnOOH,and Mn2O3 revert to a-MnO2 with the extraction of Zn2+ and H+,while ZnSO4·3Zn(OH)2·5H2O reacts with Mn2+ to form ZnMn3O7·3 H2O.In the following charge/discharge processes,besides aforementioned electrochemical reactions,Zn2+ reversibly insert into/extract from α-MnO2,ZnxMnO4,and ZnMn3O7·3H2O hosts;ZnSO4·3Zn(OH)2·5 H2O,Zn2Mn3O8,and ZnMn2O4 convert mutually with the participation of Mn2+.This work is believed to provide theoretical guidance for further research on high-performance ZIBs. 展开更多
关键词 Zinc-ion battery mno2 CATHODE Energy storage MECHANISM Phase evolution
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Deciphering H^(+)/Zn^(2+) co-intercalation mechanism of MOF-derived2D MnO/C cathode for long cycle life aqueous zinc-ion batteries 被引量:14
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作者 Zheng-Xiang Zhu Zhang-Wen Lin +4 位作者 Zhong-Wei Sun Pei-Xin Zhang Chang-Ping Li Rui Dong Hong-Wei Mi 《Rare Metals》 SCIE EI CAS CSCD 2022年第11期3729-3739,共11页
Poor conductivity,sluggish ion diffusion kinetics and short cycle life hinder the further development of manganese oxide in aqueous zinc-ion batteries(AZIBs).Exploring a cathode with high capacity and long cycle life ... Poor conductivity,sluggish ion diffusion kinetics and short cycle life hinder the further development of manganese oxide in aqueous zinc-ion batteries(AZIBs).Exploring a cathode with high capacity and long cycle life is critical to the commercial development of AZIBs.Herein,a two-dimensional(2D) MnO/C composite derived from metal organic framework(MOF) was prepared.The 2D MnO/C cathode exhibits a remarkably cyclic stability with the capacity retention of 90.6% after 900 cycles at 0.5 A·g^(-1) and maintains a high capacity of 120.2 mAh·g^(-1)after 4500 cycles at 1.0 A·g^(-1).It is demonstrated that MnO is converted into Mn_(3)O_(4) through electrochemical activation strategy and shows a Zn^(2+)and H^(+)co-intercalation mechanism.In general,this work provides a new path for the development of high-performance AZIBs cathode with controllable morphology. 展开更多
关键词 Aqueous zinc-ion battery mno/C Morphology design H^(+)/zn^(2+)co-insertion
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Synergistic chemical and electrochemical strategy for high-performance Zn//MnO_(2) batteries 被引量:5
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作者 Mingming Han Jingjing Yao +4 位作者 Jiwu Huang Yan Tang Xianwen Wu Bingan Lu Jiang Zhou 《Chinese Chemical Letters》 SCIE CAS CSCD 2023年第2期500-505,共6页
Aqueous rechargeable Zn//MnO_(2)batteries have been considered as the promising candidate for future energy storage system due to their economic and environmental merits.However,the high-performance Zn//MnO_(2)batteri... Aqueous rechargeable Zn//MnO_(2)batteries have been considered as the promising candidate for future energy storage system due to their economic and environmental merits.However,the high-performance Zn//MnO_(2)batteries are plagued by poor sluggish reaction kinetics and capacity degradation due to the strong electrostatic interactions and complicated reaction process.Herein,the synergistic effect of atom defects engineering and phase transformation mechanism is confirmed as the effective strategy to enhance ion/charge transfer kinetics and structural stability.Defects gradient controlling and electrochemically induced phase transformation from spinel to layered structure render the aqueous Zn//λ-MnO_(2)system delivers a high discharge capacity of 285 m Ah/g and capacity retention of 81%after 500 cycles. 展开更多
关键词 Aqueous zn//mno_(2)battery Oxygen defects Phase transformation Electrochemical induce Reaction mechanism
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Mn3O4/carbon nanotube nanocomposites recycled from waste alkaline Zn–MnO2 batteries as high-performance energy materials 被引量:7
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作者 Li-Hua Zhang Si-Si Wu +5 位作者 Yi Wan Yi-Feng Huo Yao-Cong Luo Ming-Yang Yang Min-Chan Li Zhou-Guang Lu 《Rare Metals》 SCIE EI CAS CSCD 2017年第5期442-448,共7页
Alkaline zinc manganese dioxide(Zn–MnO2)batteries are widely used in everyday life. Recycling of waste alkaline Zn–MnO2 batteries has always been a hot environmental concern. In this study, a simple and costeffect... Alkaline zinc manganese dioxide(Zn–MnO2)batteries are widely used in everyday life. Recycling of waste alkaline Zn–MnO2 batteries has always been a hot environmental concern. In this study, a simple and costeffective process for synthesizing Mn3O4/carbon nanotube(CNT) nanocomposites from recycled alkaline Zn–MnO2 batteries is presented. Manganese oxide was recovered from spent Zn–MnO2 battery cathodes. The Mn3O4/CNT nanocomposites were produced by ball milling the recovered manganese oxide in a commercial multi-wall carbon nanotubes(MWCNTs) solution. Scanning electron microscopy(SEM) analysis demonstrates that the nanocomposite has a unique three-dimensional(3D) bird nest structure. Mn3O4 nanoparticles are homogeneously distributed on MWCNT framework. Mn3O4/CNT nanocomposites were evaluated as an anode material for lithium-ion batteries, exhibiting a highly reversible specific capacitance of -580 mA h·g^-1 after 100 cycles. Moreover, Mn3O4/CNT nanocomposite also shows a fairly positive onset potential of -0.15 V and quite high oxygen reducibility when considered as an electrocatalyst for oxygen reduction reaction. 展开更多
关键词 Waste znmno2 batteries Recycling Nanocomposites Anode materials Oxygen reduction reaction
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Development of High Areal Capacity Electrolytic MnO_(2)-Zn Battery via an Iodine Mediator 被引量:2
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作者 Xinhua Zheng Ruihao Luo +9 位作者 Touqeer Ahmad Jifei Sun Shuang Liu Na Chen Mingming Wang Yuan Yuan Mingyan Chuai Yan Xu Taoli Jiang Wei Chen 《Energy & Environmental Materials》 SCIE EI CAS CSCD 2023年第6期243-250,共8页
The commercialization of electrolytic MnO_(2)-Zn batteries is highly applauded owing to the advantages of cost-effectiveness,high safety,high energy density,and durable working performance.However,due to the low rever... The commercialization of electrolytic MnO_(2)-Zn batteries is highly applauded owing to the advantages of cost-effectiveness,high safety,high energy density,and durable working performance.However,due to the low reversibility of the cathode MnO_(2)/Mn^(2+)chemistry at high areal capacities and the severe Zn anode corrosion,the practical application of MnO_(2)-Zn batteries is hampered by inadequate lifespan.Leveraging the full advantage of an iodine redox mediator,here we design a highly rechargeable electrolytic MnO_(2)-Zn battery with a high areal capacity.The MnO_(2)-Zn battery coupled with an iodine mediator in a mild electrolyte shows a high discharge voltage of 1.85 V and a robust areal capacity of 10 mAh cm^(-2)under a substantial discharge current density of 160 mA cm^(-2).The MnO_(2)/I_(2)-Zn battery with an areal capacity of 10 mAh cm^(-2)exhibits prolonged stability of over 950 cycles under a high-capacity retention of~94%.The scaled-up MnO_(2)/I_(2)-Zn battery reveals a stable cycle life under a cell capacity of~600 mAh.Moreover,our constructed MnO_(2)/I_(2)-Zn battery demonstrates a practical energy density of~37 Wh kg^(-1)and a competitive energy cost of<18 US$kWh^(-1)by taking into account the cathode,anode,and electrolyte.The MnO_(2)/I_(2)-Zn battery,with its remarkable reversibility and reasonable energy density,enlightens a new arena of large-scale energy storage devices. 展开更多
关键词 high areal capacity iodine redox mediator large-scale energy storage mno2-zn battery
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Towards storable and durable Zn-MnO_(2) batteries with hydrous tetraglyme electrolyte 被引量:1
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作者 Kaixuan Ma Gongzheng Yang Chengxin Wang 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2023年第5期432-441,I0010,共11页
Aqueous rechargeable zinc-based batteries have attracted increasing interest and been considered potential alternatives for state-of-the-art lithium-ion batteries because of the low cost and high safety.Many cathode m... Aqueous rechargeable zinc-based batteries have attracted increasing interest and been considered potential alternatives for state-of-the-art lithium-ion batteries because of the low cost and high safety.Many cathode materials have been gradually developed and demonstrated excellent electrochemical performances.However,the complex electrochemistry,inevitable hydrogen release,and zinc corrosion severely hinder the practical application.The most concerned Zn-MnO_(2)batteries still suffer from the Mn dissolution and formation of byproducts.By adding organic solvents to inhibit the activity of water molecules,the hydrous organic electrolytes provide a sound solution for eliminating the unfavorable factors.Here we report a tetraethylene glycol dimethyl ether-based hydrous organic electrolyte consisting of LiClO_(4)·3H_(2)O and Zn(ClO4)2·6H2O,and a birnessite-type MnO_(2)cathode material for Zn-MnO_(2)batteries.The Li+/Zn2+ions co-(de)insertion mechanism is ascertained by the structural and morphological analyses.The electrostatic interaction between inserted ions and crystal structure is reduced effectively by employment of monovalent Li+ions,which ensures structural stability of cathode materials.Hydrous tetraglyme electrolyte inhibits the activity of water molecules and thus avoids the formation of byproduct Zn_(4)ClO_(4)(OH)7·Meanwhile,highly stable Zn plating/stripping for over 1500 h,an average coulombic efficiency of>99%in long-term cycling,and ultralong storage life(the cells can work well after stored over 1 year)are simultaneously realized in the novel electrolyte.Benefitting from these aspects,the Zn-MnO_(2)batteries manifest high specific capacity of 132 mA h g^(-1),an operating voltage of 1.25 V,and a capacity retention of>98%after 1000 cycles at a current density of 200 mA g^(-1). 展开更多
关键词 Energy storage zn battery δ-mno_(2) Hydrous tetraglyme electrolytes Long life
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Template synthesis of MnO_2/CNT nanocomposite and its application in rechargeable lithium batteries 被引量:4
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作者 邹敏敏 艾邓均 刘开宇 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2011年第9期2010-2014,共5页
Nanostructured MnO2/CNT composite was synthesized by a soft template approach in the presence of Pluronic P123 surfactant. The product was characterized by X-ray diffraction, thermogravimetric and differential thermal... Nanostructured MnO2/CNT composite was synthesized by a soft template approach in the presence of Pluronic P123 surfactant. The product was characterized by X-ray diffraction, thermogravimetric and differential thermal analyses, Fourier transformed infrared spectroscopy and high-resolution transmission electron microscopy. The results show that the sample consists of poor crystalline α-MnO2 nanorods with a diameter of about 10 nm and a length of 30-50 nm, which absorb on the carbon nanotubes. The electrochemical properties of the product as cathode material for Li-MnO2 cell are evaluated by galvanostatic charge-discharge and electrochemical impedance spectroscopy (EIS). Compared with pure MnO2 electrode, the MnO2/CNT composite delivers a much larger initial capacity of 275.3 mA-h/g and better rate and cycling performance. 展开更多
关键词 mno2/CNT soft template NANOCOMPOSITE rechargeable lithium batteries
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Zn/MnO_2固态电池 被引量:1
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作者 王文楼 林枫凉 +1 位作者 刘皖育 俞文海 《中国科学技术大学学报》 CAS CSCD 北大核心 1991年第4期459-464,共6页
利用Zn-蒙脱石作为固体电解质,组装成Zn/Zn-蒙脱石/MnO_2固态电池。研究了不同温度处理的电解MnO_2对电池性能的影响,发现以γ和β相共存的MnO_2具有较高的放电容量。电池的极化性能研究表明电解质的电阻所引起的欧姆极化是电池极化的... 利用Zn-蒙脱石作为固体电解质,组装成Zn/Zn-蒙脱石/MnO_2固态电池。研究了不同温度处理的电解MnO_2对电池性能的影响,发现以γ和β相共存的MnO_2具有较高的放电容量。电池的极化性能研究表明电解质的电阻所引起的欧姆极化是电池极化的主要因素。本文还初步探讨了离子在蒙脱石中的迁移机制对电池性能的影响,提出水合离子迁移的概念。 展开更多
关键词 固态电池 蒙脱石 快离子导体
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Zn-MnO_2同槽电解工业生产试验研究 被引量:2
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作者 张文山 梅光贵 钟竹前 《中国锰业》 2006年第4期38-41,共4页
论述了Zn、Mn浸出、净化及Zn-MnO2同槽电解的工业生产试验工艺流程、技术条件与研究结果,获得了较好的技术指标与产品质量。阐明了各主要过程的基本原理与主要化学反应。
关键词 浸出 净化 znmno2同槽电解
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胺功能化的铜催化剂:氢键介导的电化学CO_(2)还原为C_(2)产物以及优越的可充电Zn-CO_(2)电池性能
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作者 项东 李坤振 +3 位作者 苗康华 龙冉 熊宇杰 康雄武 《物理化学学报》 SCIE CAS CSCD 北大核心 2024年第8期43-46,共4页
有机分子功能化是一种有前景的策略,用于调控电化学CO_(2)还原反应(eCO_(2)RR)的C_(2+)产物选择性和活性。然而,我们对于电化学CO_(2)还原调控机制的分子水平理解仍然不够清晰。在本文中,我们成功制备了铜纳米颗粒,并使用一系列胺类衍生... 有机分子功能化是一种有前景的策略,用于调控电化学CO_(2)还原反应(eCO_(2)RR)的C_(2+)产物选择性和活性。然而,我们对于电化学CO_(2)还原调控机制的分子水平理解仍然不够清晰。在本文中,我们成功制备了铜纳米颗粒,并使用一系列胺类衍生物(如十六胺(HAD)、N-甲基十六胺(N-MHDA)、十六烷基二甲胺(HDDMA)和十六酰胺(PMM))对其进行功能化,以系统地研究胺表面活性剂分子结构对eCO_(2)RR选择性和活性的影响。结果表明,HDA的功能化可以将C_(2)产物和C_(2)H_(4)的法拉第效率(FE)提高至73.5%和46.4%,并且在−0.9 V vs.RHE(可逆氢电极)电位下,C_(2)产物的分电流密度为131.4 mA·cm^(−2)。理论研究发现,HDA通过与CO_(2)和eCO_(2)RR中间体之间的氢键相互作用,富集了^(*)CO_(2)、^(*)CO和其他反应中间体,降低了CO―CHO耦合反应的动力学能垒,从而促进了eCO_(2)RR向C_(2)产物的转化。当胺基的H原子被甲基取代后,氢键相互作用减弱,竞争的析氢反应加剧。PMM通过Cu―O键与Cu表面发生键合,而不是通过Cu―N键,导致Cu-PMM更倾向于产乙醇。原位拉曼光谱显示,在Cu-HDA表面,CO主要吸附在Cu的顶位吸附位点上,与在Cu表面上的桥式吸附不同,这可能是因为前者表面对CO的富集引发了CO的吸附构型变化。HDA功能化还提高了Cu催化剂的表面pH。基于Cu-HDA组装的可充电Zn-CO_(2)电池在放电电流密度为16 mA∙cm^(−2)时,最大功率密度为6.48 mW∙cm^(−2),并具有长达60 h的良好充放电稳定性。本研究的重点在于通过在分子水平上调节Cu基材料的CO_(2)RR活性和选择性,促进CO_(2)-C_(2)的转化,这可能为提高C_(2)产物的产率提供新的见解。 展开更多
关键词 二氧化碳还原 CO―CHO耦合 有机分子功能化 原位拉曼 C_(2)产物 zn-CO_(2)电池
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碱性Zn/MnO_2电池的技术进步与发展潜力(2) 被引量:1
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作者 夏熙 郭再萍 高瑞芝 《电池工业》 CAS 1998年第6期163-167,共5页
关键词 zn/mno2 短路电流 技术进步 接触电阻 电液 导电率 发展潜力 第三电极 容量损失 导电涂层
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碱性Zn-MnO_2电池的动电位扫描研究 被引量:1
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作者 贺廷莲 李宝善 《青海师范大学学报(自然科学版)》 2002年第3期65-66,共2页
本文利用动电位扫描法研究了电极结构对碱性Zn -MnO2 电池的影响 ,结果表明减弱MnO2 与导电物质的接触可以抑制第二步反应。
关键词 碱性zn-mno2电池 电极结构 动电位扫描法 二氧化锰 碱性锌锰电池 二次电池
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Zn/MnO_2电池的电解质溶液
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作者 宋文顺 《电池》 CAS CSCD 北大核心 2002年第2期121-122,共2页
对Zn/MnO2 电池所用电解质溶液的发展及其导电性、杂质与净化和添加剂进行了讨论 ,并指出电池的放电特征主要取决于电解质的性质 ,建议对电池的放电特点加强宣传。
关键词 zn/mno2电池 电解质溶液 放电特点 锌锰电池
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