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A Room-Temperature Chloride-Conducting Metal-Organic Crystal[Al(DMSO)_(6)]Cl_(3) for Potential Solid-State Chloride-Shuttle Batteries
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作者 Bing Wu Jan Luxa +5 位作者 Jiří Šturala shuangying wei Lukáš Děkanovský Abhilash Karuthedath Parameswaran Min Li Zdenek Sofer 《Energy & Environmental Materials》 SCIE EI CAS CSCD 2024年第1期107-113,共7页
The growing demand for substitutes of lithium chemistries in battery leads to a surge in budding novel anion-based electrochemical energy storage,where the chloride ion batteries(CIBs)take over the role.The applicatio... The growing demand for substitutes of lithium chemistries in battery leads to a surge in budding novel anion-based electrochemical energy storage,where the chloride ion batteries(CIBs)take over the role.The application of CIBs is limited by the dissolution and side reaction of chloride-based electrode materials in a liquid electrolyte.On the flipside,its solid-state electrolytes are scarcely reported due to the challenge in realizing fast Cl^(-)conductivity.The present study reports[Al(DMSO)_(6)]Cl_(3),a solid-state metal-organic material,allows chloride ion transfer.The strong Al-Cl bonds in AlCl_(3)are broken down after coordinating of Al^(3+)by ligand DMSO,and Cl^(-)in the resulting compound is weakly bound to complexions[Al(DMSO)_(6)]^(3+),which may facilitate Cl^(-)migration.By partial replacement of Cl^(-)with PF_(6)^(-),the room-temperature ionic conductivity of as-prepared electrolyte is increased by one order of magnitude from 2.172×10^(-5)S cm^(-1)to 2.012×10^(-4)S cm^(-1).When they are assembled with Ag(anode)/Ag-AgCl(cathode)electrode system,reversible electrochemical redox reactions occur on both sides,demonstrating its potential for solid-state chloride ion batteries.The strategy by weakening the bonding interaction using organic ligands between Cl^(-)and central metallic ions may provide new ideas for developing solid chloride-ion conductors. 展开更多
关键词 [Al(DMSO)_(6)]Cl_(3) chloride-ion batteries ionic conductivity METAL-ORGANIC solid-state electrolytes
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预乳化半连续法聚丙烯酸酯核壳乳液的制备与性能 被引量:6
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作者 韦双颖 张红 +6 位作者 桂成胜 张彦华 毕晓柯 余华 张宇 李松林 王亚宁 《高分子材料科学与工程》 EI CAS CSCD 北大核心 2018年第5期35-40,共6页
以甲基丙烯酸甲酯(MMA)和丙烯酸丁酯(BA)为主单体,丙烯酸(AA)和丙烯酸羟丙酯(HPMA)为功能性单体,采用预乳化、半连续法种子乳液聚合方法合成了一种硬核软壳聚丙烯酸酯乳液。文中研究了核壳质量比、核和壳中软硬单体BA/MMA质量比对乳液... 以甲基丙烯酸甲酯(MMA)和丙烯酸丁酯(BA)为主单体,丙烯酸(AA)和丙烯酸羟丙酯(HPMA)为功能性单体,采用预乳化、半连续法种子乳液聚合方法合成了一种硬核软壳聚丙烯酸酯乳液。文中研究了核壳质量比、核和壳中软硬单体BA/MMA质量比对乳液及涂膜性能的影响。通过激光粒度仪、透射电镜、差示扫描量热分析、动态力学分析等手段对乳液粒径及表面形貌、涂膜的玻璃化转变温度、力学性能进行了分析,并对漆膜的硬度、附着力、吸水率等进行了检测,结果表明,核壳质量比为5∶5、核中m(BA)∶m(MMA)为0∶50、壳中m(BA)∶m(MMA)为24∶26时,储存模量可达到3500 MPa,漆膜硬度为2H,附着力为1;乳胶粒有明显的核壳结构,粒径在100 nm左右。 展开更多
关键词 预乳化 半连续法 核壳结构 聚丙烯酸酯乳液
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Spherical FeF3·0.33H2O/MWCNTs nanocomposite with mesoporous structure as cathode material of sodium ion battery 被引量:1
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作者 shuangying wei Xianyou Wang +3 位作者 Min Liu Rui Zhang Gang Wang Hai Hu 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2018年第2期573-581,共9页
FeF3·0.33H2O crystallizes in hexagonal tungsten bronze structure with more opened hexagonal cavities are considered as next generation electrode materials of both lithium ion battery and sodium ion battery.In thi... FeF3·0.33H2O crystallizes in hexagonal tungsten bronze structure with more opened hexagonal cavities are considered as next generation electrode materials of both lithium ion battery and sodium ion battery.In this paper the mesoporous spherical FeF3·0.33H2O/MWCNTs nanocomposite was successfully synthesized via a one-step solvothermal approach. Galvanostatic measurement showed that the performances of sodium ion batteries(SIBs) using FeF3·0.33H2O/MWCNTs as cathode material were highly dependent on the morphology and size of the as-prepared materials. Benefitting from the special mesoporous structure features, FeF3·0.33H2O/MWCNTs nanocomposite exhibits much better electrochemical performances in terms of initial discharge capacity(350.4 mAh g-1) and cycle performance(123.5 mAh g-1 after 50 cycles at 0.1 C range from 1.0 V to 4.0 V) as well as rate capacity(123.8 mAh g-1 after 25 cycles back to 0.1 C). The excellent electrochemical performance enhancement can be attributed to the synergistic effect of the mesoporous structure and the MWCNTs conductive network, which can effectively increase the contact area between the active materials and the electrolyte, shorten the Na+ diffusion pathway,buffer the volume change during cycling/discharge process and improve the structure stability of the FeF3·0.33H2O/MWCNTs nanocomposite. 展开更多
关键词 Sodium ion batteries Cathode material Spherical nanoparticles Mesoporous structure Conductive network
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