Minghui Liu , Mudi Li , Siwen Zhang , Yaxi Ding , Ying Sun , Jiazhuo Li , Haixi Gu , Bosi Yin , Hui Li , Tianyi Ma
{"title":"用于高性能水性镁离子电容器的具有双离子缺陷的 MnS/MnO 异质结构","authors":"Minghui Liu , Mudi Li , Siwen Zhang , Yaxi Ding , Ying Sun , Jiazhuo Li , Haixi Gu , Bosi Yin , Hui Li , Tianyi Ma","doi":"10.1016/j.jma.2024.04.036","DOIUrl":null,"url":null,"abstract":"<div><div>The advancement of aqueous magnesium ion energy storage devices encounters limitations due to the substantial hydration radius of magnesium ions (Mg<sup>2+</sup>) and their strong electrostatic interaction with the primary material. Consequently, this study successfully developed a MnS/MnO heterostructure through a straightforward hydrothermal and annealing method, marking its initial application in aqueous magnesium ion capacitors (AMICs). The fabricated MnS/MnO heterostructure, characterized by S defects, also generates Mn defects via in-situ initiation of early electrochemical processes. This unique dual ion defects MnS/MnO heterostructure (DID-MnS/MnO) enables the transformation of MnS and MnO, initially not highly active electrochemically for Mg<sup>2+</sup>, into cathode materials exhibiting high electrochemical activity and superior performance. Moreover, DID-MnS/MnO enhances conductivity, improves the kinetics of surface redox reactions, and increases the diffusion rate of Mg<sup>2+</sup>. Furthermore, this study introduces a dual energy storage mechanism for DID-MnS/MnO, which, in conjunction with dual ion defects, offers additional active sites for Mg<sup>2+</sup> insertion/deinsertion in the host material, mitigating volume expansion and structural degradation during repeated charge-discharge cycles, thereby significantly enhancing cycling reversibility. As anticipated, using a three-electrode system, the developed DID-MnS/MnO demonstrated a discharge specific capacity of 237.9 mAh/g at a current density of 0.1 A/g. Remarkably, the constructed AMIC maintained a capacity retention rate of 94.3% after 10000 cycles at a current density of 1.0 A/g, with a specific capacitance of 165.7 F/g. Hence, DID-MnS/MnO offers insightful perspectives for designing alternative clean energy sources and is expected to contribute significantly to the advancement of the clean energy sector.</div></div>","PeriodicalId":16214,"journal":{"name":"Journal of Magnesium and Alloys","volume":"13 1","pages":"Pages 219-228"},"PeriodicalIF":15.8000,"publicationDate":"2025-01-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"MnS/MnO heterostructures with dual ion defects for high-performance aqueous magnesium ion capacitors\",\"authors\":\"Minghui Liu , Mudi Li , Siwen Zhang , Yaxi Ding , Ying Sun , Jiazhuo Li , Haixi Gu , Bosi Yin , Hui Li , Tianyi Ma\",\"doi\":\"10.1016/j.jma.2024.04.036\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>The advancement of aqueous magnesium ion energy storage devices encounters limitations due to the substantial hydration radius of magnesium ions (Mg<sup>2+</sup>) and their strong electrostatic interaction with the primary material. Consequently, this study successfully developed a MnS/MnO heterostructure through a straightforward hydrothermal and annealing method, marking its initial application in aqueous magnesium ion capacitors (AMICs). The fabricated MnS/MnO heterostructure, characterized by S defects, also generates Mn defects via in-situ initiation of early electrochemical processes. This unique dual ion defects MnS/MnO heterostructure (DID-MnS/MnO) enables the transformation of MnS and MnO, initially not highly active electrochemically for Mg<sup>2+</sup>, into cathode materials exhibiting high electrochemical activity and superior performance. Moreover, DID-MnS/MnO enhances conductivity, improves the kinetics of surface redox reactions, and increases the diffusion rate of Mg<sup>2+</sup>. 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引用次数: 0
摘要
由于镁离子(Mg2+)的水化半径大,且与原材料的静电相互作用强,水性镁离子储能装置的发展受到限制。因此,本研究通过简单的水热和退火方法成功地开发了MnS/MnO异质结构,标志着其在水镁离子电容器(AMICs)中的首次应用。制备的MnS/MnO异质结构以S缺陷为特征,也通过原位引发早期电化学过程产生Mn缺陷。这种独特的双离子缺陷MnS/MnO异质结构(DID-MnS/MnO)使MnS和MnO能够转化为具有高电化学活性和优异性能的正极材料,而MnS和MnO最初对Mg2+的电化学活性不高。此外,DID-MnS/MnO增强了导电性能,改善了表面氧化还原反应动力学,提高了Mg2+的扩散速率。此外,本研究引入了DID-MnS/MnO的双能量存储机制,该机制与双离子缺陷一起,为宿主材料中的Mg2+插入/脱插入提供了额外的活性位点,减轻了反复充放电循环过程中的体积膨胀和结构退化,从而显著提高了循环的可逆性。正如预期的那样,使用三电极系统,开发的DID-MnS/MnO在0.1 a /g电流密度下的放电比容量为237.9 mAh/g。值得注意的是,在电流密度为1.0 a /g、比电容为165.7 F/g的情况下,构建的AMIC在10000次循环后保持了94.3%的容量保持率。因此,DID-MnS/MnO为设计替代清洁能源提供了深刻的见解,并有望为清洁能源领域的发展做出重大贡献。
MnS/MnO heterostructures with dual ion defects for high-performance aqueous magnesium ion capacitors
The advancement of aqueous magnesium ion energy storage devices encounters limitations due to the substantial hydration radius of magnesium ions (Mg2+) and their strong electrostatic interaction with the primary material. Consequently, this study successfully developed a MnS/MnO heterostructure through a straightforward hydrothermal and annealing method, marking its initial application in aqueous magnesium ion capacitors (AMICs). The fabricated MnS/MnO heterostructure, characterized by S defects, also generates Mn defects via in-situ initiation of early electrochemical processes. This unique dual ion defects MnS/MnO heterostructure (DID-MnS/MnO) enables the transformation of MnS and MnO, initially not highly active electrochemically for Mg2+, into cathode materials exhibiting high electrochemical activity and superior performance. Moreover, DID-MnS/MnO enhances conductivity, improves the kinetics of surface redox reactions, and increases the diffusion rate of Mg2+. Furthermore, this study introduces a dual energy storage mechanism for DID-MnS/MnO, which, in conjunction with dual ion defects, offers additional active sites for Mg2+ insertion/deinsertion in the host material, mitigating volume expansion and structural degradation during repeated charge-discharge cycles, thereby significantly enhancing cycling reversibility. As anticipated, using a three-electrode system, the developed DID-MnS/MnO demonstrated a discharge specific capacity of 237.9 mAh/g at a current density of 0.1 A/g. Remarkably, the constructed AMIC maintained a capacity retention rate of 94.3% after 10000 cycles at a current density of 1.0 A/g, with a specific capacitance of 165.7 F/g. Hence, DID-MnS/MnO offers insightful perspectives for designing alternative clean energy sources and is expected to contribute significantly to the advancement of the clean energy sector.
期刊介绍:
The Journal of Magnesium and Alloys serves as a global platform for both theoretical and experimental studies in magnesium science and engineering. It welcomes submissions investigating various scientific and engineering factors impacting the metallurgy, processing, microstructure, properties, and applications of magnesium and alloys. The journal covers all aspects of magnesium and alloy research, including raw materials, alloy casting, extrusion and deformation, corrosion and surface treatment, joining and machining, simulation and modeling, microstructure evolution and mechanical properties, new alloy development, magnesium-based composites, bio-materials and energy materials, applications, and recycling.