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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Microstructured Sulfur-Doped Carbon-Coated Fe7S8 Composite for High-Performance Lithium and Sodium Storage
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Microstructured Sulfur-Doped Carbon-Coated Fe7S8 Composite for High-Performance Lithium and Sodium Storage

机译:高性能锂和钠储存的微结构化硫掺杂碳涂层Fe7S8复合材料

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摘要

From the perspective of resource reserves, environmental effects, and production costs, direct utilization of natural ores as electrode materials for rechargeable batteries after mineral processing is of more practical significance than chemosynthetic materials. While the corresponding investigation is relatively insufficient, herein phenolic resin (PR)-coated natural pyrite composite (FeS2@PR) is successfully fabricated using natural pyrite and oligomeric phenolic resin as starting materials. Subsequent oligomer polymerization and calcination process convert FeS2@C into sulfur-doped carbon-coated Fe7S8(FS@C). Benefiting from the good electric and ionic conductivity of Fe7S8, abundant sulfur active sites, and porosity on carbon shell and effective carbon buffering, FS@C exhibits impressive electro- chemical performance as anodes for lithium-ion batteries (LIBs) and sodium-ion batteries (SIBs). It delivers high reversible capacities of 1319 and 796 mAh g(-1) after 100 cycles at 0.1 A g(-1) for LIBs and SIBs, respectively. Even at a high current density of 2.0 A g(-1), considerable capacities of 771 mAh g(-1) after 1000 cycles and 545 mAh g(-1) after 400 cycles are retained for LIBs and SIBs. This work provides a promising prospect toward scalable production of high-capacity iron sulfide anode for lithium-ion and sodiumion batteries.
机译:从资源储备,环境效应和生产成本的角度来看,直接利用天然矿石作为矿物加工后可充电电池的电极材料比化学合成材料更具实际意义。虽然相应的研究相对不足,但是,在此,使用天然硫铁矿和低聚酚醛树脂作为原料成功制造酚醛树脂(PR) - 涂覆的天然硫铁矿复合物(FES2 @ PR)。随后的低聚物聚合和煅烧过程将FES2 @ C转化为硫掺杂的碳涂层Fe7S8(FS @ C)。受益于FE7S8,丰富的硫活性位点和碳壳和有效碳缓冲孔隙率的良好电和离子电导率,FS @ C表现为锂离子电池(LIBS)和钠离子电池的阳极呈现令人印象深刻的电化学性能(SIBS)。在100次为0.1Ag(-1)的Libs和SIBs的100个循环后,它在100次循环后提供了高可逆容量1319和796mAhg(-1)。即使在2.0Ag(-1)的高电流密度下,在1000次循环后的771mAhg(-1)和545mAhg(-1)后,保留了400次循环的相当大,保留了LIB和SIB。这项工作为锂离子和钠电池的高容量铁硫化物阳极进行了可扩展的生产前景。

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