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Apically guiding electron/mass transfer reaction induced by Ag/FeN_(x)Mott-Schottky effect within a hollow star reactor toward high performance zinc-air batteries
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作者 kaixiang shi Kaixin Wang +7 位作者 Tong Li Junhao Li Jie Ren Xu Li Yonggang Min Zhouguang Lu Wei Tan Quanbing Liu 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2024年第8期106-116,I0004,共12页
The disparity in the transfer of carriers(electrons/mass)during the reaction in zinc-air batteries(ZABs)results in sluggish kinetics of the oxygen reduction reaction(ORR)and oxygen evolution reaction(OER),along with e... The disparity in the transfer of carriers(electrons/mass)during the reaction in zinc-air batteries(ZABs)results in sluggish kinetics of the oxygen reduction reaction(ORR)and oxygen evolution reaction(OER),along with elevated overpotentials,thereby imposing additional constraints on its utilization.Therefore,the pre-design and target-development of inexpensive,high-performance,and long-term stable bifunctional catalysts are urgently needed.In this work,an apically guiding dual-functional electrocatalyst(Ag-FeN_(x)-N-C)was prepared,in which a hierarchical porous nitrogen-doped carbon with three-dimensional(3D)hollow star-shaped structure is used as a substrate and high-conductivity Ag nanoparticles are coupled with iron nitride(FeN_(x))nanoparticles.Theoretical calculations indicate that the Mott-Schottky heterojunction as an inherent electric field comes from the two-phase bound of Ag and FeN_(x),of which electron accumulation in the FeN_(x)phase region and electron depletion in the Ag phase region promote orientated-guiding charge migration.The effective modulation of local electronic structures felicitously reforms the d-band electron-group distribution,and intellectually tunes the masstransfer reaction energy barriers for both ORR/OER.Additionally,the hollow star-s haped hierarchical porous structure provides an apical region for fast mass transfer.Experimental results show that the halfwave potential for ORR is 0.914 V,and the overpotential for OER is only 327 mV at 10 mA cm^(-2).A rechargeable ZAB with Ag-FeN_(x)-N-C as the air cathode demonstrates long-term cycling performance exceeding 1500 cycles(500 h),with a power density of 180 mW cm^(-2).Moreover,when employing AgFeN_(x)-N-C as the air cathode,flexible ZABs demonstrate a notable open-circuit voltage of 1.42 V and achieve a maximum power density of 65.6 mW cm^(-2).Ag-FeN_(x)-N-C shows guiding electron/mass transfer route and apical reaction microenvironment for the electrocatalyst architecture in the exploration prospects of ZABs. 展开更多
关键词 Hollow star structure Mott-Schottky effect Apically guiding effect Bifunctional catalysis Zinc-air batteries
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生物大分子与重金属互作研究方法与微观机制 被引量:1
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作者 渠晨晨 蔡鹏 +5 位作者 史凯祥 陈雯莉 陈今朝 高春辉 吴一超 黄巧云 《科学通报》 EI CAS CSCD 北大核心 2022年第35期4192-4205,共14页
深入理解生物大分子与重金属相互作用的微观机制对于生态环境污染治理具有重要意义.近年来,随着现代谱学、显微方法以及组学技术的应用,生物大分子与重金属结合强度、配位结构、氧化还原过程及其生物学调控过程取得了重要进展,这些研究... 深入理解生物大分子与重金属相互作用的微观机制对于生态环境污染治理具有重要意义.近年来,随着现代谱学、显微方法以及组学技术的应用,生物大分子与重金属结合强度、配位结构、氧化还原过程及其生物学调控过程取得了重要进展,这些研究在分子尺度极大丰富了相关机制的认识.本综述在总结生物大分子与重金属相互作用最新研究方法及其机制的基础上,指出未来亟须发展生物大分子结构与组成表征的方法体系,探究功能性生物大分子参与的重金属吸附与氧化还原过程,揭示复合生物膜系统中微生物功能和重金属形态转化之间的耦合机制,推进重金属与环境组分相互作用的理解从官能团到功能分子尺度的跨越.通过方法集成与创新、机制解析与应用,为水体和土壤重金属污染治理提供有效策略与精准技术. 展开更多
关键词 生物膜 生物大分子 重金属污染 分子机制 氧化还原
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“蛋黄蛋壳”结构纳米电极材料设计及在锂/钠离子/锂硫电池中的应用 被引量:1
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作者 李芳远 李俊豪 +3 位作者 吴钰洁 石凯祥 刘全兵 彭翃杰 《化学进展》 SCIE CAS CSCD 北大核心 2022年第6期1369-1383,共15页
“蛋黄蛋壳”结构纳米材料,具有易于调控的“蛋黄”、“蛋壳”和“空腔”结构,可视作“纳米反应器”,在催化、储能等领域表现出显著的应用潜力。尤其在电化学能源存储和转换方面,该结构纳米电极具有大的比表面积和独特的核壳结构,在充... “蛋黄蛋壳”结构纳米材料,具有易于调控的“蛋黄”、“蛋壳”和“空腔”结构,可视作“纳米反应器”,在催化、储能等领域表现出显著的应用潜力。尤其在电化学能源存储和转换方面,该结构纳米电极具有大的比表面积和独特的核壳结构,在充放电过程中可缓解电极的体积变化,提供快速的离子/电子输运通道,强化中间产物的吸附和提升转换反应效率等,能显著提高电极稳定性、倍率性能和循环性能,是一类较为理想的电极材料。本文针对“蛋黄蛋壳”结构纳米电极在锂/钠离子电池、锂硫电池等新兴二次电池领域的实际应用,总结了具有该结构纳米电极的设计与合成策略,包括:模板法、奥斯特瓦尔德熟化、电化学置换、克肯达尔效应等,评述了各种策略的优缺点以及电极材料的应用进展,最后对该类材料在锂/钠体系及锂硫电池二次电池方面的研究与应用前景进行了展望。 展开更多
关键词 锂离子电池 钠离子电池 锂硫电池 蛋黄蛋壳结构制备 纳米电极
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Designing Electrochemical Nanoreactors to Accelerate Li_(2)S_(1/2) Three-Dimensional Growth Process and Generating More Li_(2)S for Advanced Li–S Batteries 被引量:2
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作者 Junhao Li kaixiang shi +7 位作者 Jiajie Pan Junda Pan Yongxian Lin Kaixin Wang Hao Li Jinyun Liao Huafeng Dong Quanbing Liu 《Renewables》 2023年第3期341-352,共12页
With advantages of low costs and high energy density,Li–S batteries are considered as one of the most promising energy storage devices.However,Li_(2)S_(2) with a high dissociation energy and insulative properties is ... With advantages of low costs and high energy density,Li–S batteries are considered as one of the most promising energy storage devices.However,Li_(2)S_(2) with a high dissociation energy and insulative properties is hard to convert into Li_(2)S,resulting in underutilization of sulfur capacity.Herein,Co-Mo_(2)C@C yolk–shell spheres as nanoreactors were designed to confront this challenge rationally.The Co-Mo_(2)C@C-induced Li_(2)S_(1/2) nucleation and growth in the three-dimensional process and the cathode produced more Li_(2)S after full discharge.Experimental studies and theoretical calculations reveal that the conversion barrier from Li_(2)S_(2) into Li_(2)S was lowered while the diffusion of lithium ions and electron transfer accelerated when using the Co-Mo_(2)C@C catalyst.Based on the above advantages,the Co-Mo_(2)C@C/S cathode exhibits a high reversible capacity and excellent cyclic stability,such as an initial specific capacity of 1200 mAh g^(−1) at 0.1 C with 709 mAh g^(−1) at 1.0 C after 1000 cycles with a low capacity fading rate of 0.04%per cycle.Even at high densities of 3.0 C and 5.0 C,the specific capacities are 647.6 and 557.7 mAh g^(−1) after 400 cycles,respectively.Impressively,it also shows ca.770 and 900 mAh g^(−1) at 0.2 C after 50 cycles with high sulfur loadings of 4.2 and 5.1 mg cm−2,respectively.The present work may provide new insights into the design of nanoreactors to promote Li_(2)S_(1/2) growth in a three-dimensional process and accelerate conversion from solid Li_(2)S_(2) to solid Li_(2)S in high performance Li–S batteries. 展开更多
关键词 Li-S batteries cobalt-dopedβ-Mo_(2)C yolk-shell structure optimizing Li_(2)S_(1/2)growth process fast solid-solid conversion of Li_(2)S_(2)-Li_(2)S
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