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冷却方式对Ti/IrO_2+MnO_2阳极析氧电催化活性及稳定性的影响 被引量:1
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作者 叶志国 刘华英 +2 位作者 周贤良 华小珍 彭新元 《功能材料》 EI CAS CSCD 北大核心 2011年第B04期264-267,271,共5页
通过热分解法制备Ti/IrO2+MnO2阳极,研究水冷、空冷、氮气保护随炉冷(氮冷)及炉冷4种冷却方式对Ti/IrO2+MnO2阳极电催化活性及稳定性的影响。研究表明,水冷得到的Ti/IrO2+MnO2阳极具有最高的电催化活性,循环伏安电荷q*可到达140mC/cm2左... 通过热分解法制备Ti/IrO2+MnO2阳极,研究水冷、空冷、氮气保护随炉冷(氮冷)及炉冷4种冷却方式对Ti/IrO2+MnO2阳极电催化活性及稳定性的影响。研究表明,水冷得到的Ti/IrO2+MnO2阳极具有最高的电催化活性,循环伏安电荷q*可到达140mC/cm2左右,但该阳极的稳定性最差;炉冷电极及氮冷电极的催化活性及稳定性均较差;空冷阳极具有较高的电催化活性,循环伏安电荷q*可到达118mC/cm2,且稳定性是4种电极中最高的。综合分析,空冷是比较合理的冷却方式,它能确保Ti/IrO2+MnO2阳极在具有良好的电催化活性的同时又拥有最高的稳定性。 展开更多
关键词 冷却方式 Ti/IrO2+MnO2 催化活性:稳定性
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Strategies for balancing catalytic activity and stability in lithium-sulfur batteries
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作者 PENG Lin-kai SHI Ji-wei +3 位作者 CAO Yun LAN Jia-qi GENG Chuan-nan LV Wei 《新型炭材料(中英文)》 北大核心 2025年第4期889-908,共20页
Lithium-sulfur(Li-S)batteries have great promise for next-generation energy storage devices due to the high theoretical specific capacity(1675 mAh g^(-1))of sulfur with chemical conversion for charge storage.However,t... Lithium-sulfur(Li-S)batteries have great promise for next-generation energy storage devices due to the high theoretical specific capacity(1675 mAh g^(-1))of sulfur with chemical conversion for charge storage.However,their practical use is hindered by the slow redox kinetics of sulfur and the“shuttle effect”arising from dissolved lithium polysulfides(LiPSs).In recent years,various carbon-based materials have served as sulfur hosts and catalysts for accelerating sulfur conversion redox kinetics and alleviating LiPS shuttling.However,they often suffer from irreversible passivation and structural changes that destroy their long-term performance.We consider the main problems limiting their stability,including excessive LiPS adsorption,passivation by insulating Li2S,and surface reconstruction,and clarify how these factors lead to capacity fade.We then outline effective strategies for achieving long-term sulfur catalysis,focusing on functional carbon,such as designing suitable carbon-supported catalyst interfaces,creating well-distributed active sites,adding cocatalysts to improve electron transfer,and using carbon-based protective layers to suppress unwanted side reactions.Using this information should enable the development of stable,high-activity catalysts capable of long-term operation under practical conditions in Li-S batteries. 展开更多
关键词 Lithium-sulfur batteries CATALYSIS Catalyst poisoning Catalytic activity Catalytic stability
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