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Design of ZnSe-CoSe heterostructure decorated in hollow N-doped carbon nanocage with generous adsorption and catalysis sites for the reversibly fast kinetics of polysulfide conversion
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作者 Junan Feng Chuan Shi +7 位作者 Hanghang Dong Chaoyue Zhang Wendong Liu Yu Liu Tianyi Wang Xiaoxian Zhao shuangqiang chen Jianjun Song 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2023年第11期135-145,I0004,共12页
Although lithium-sulfur batteries(Li SBs)are regarded as one of the most promising candidates for the next-generation energy storage system,the actual industrial application is hindered by the sluggish solid–liquid p... Although lithium-sulfur batteries(Li SBs)are regarded as one of the most promising candidates for the next-generation energy storage system,the actual industrial application is hindered by the sluggish solid–liquid phase conversion kinetics,severe shuttle effect,and low sulfur loadings.Herein,a zeolitic imidazolate framework(ZIF)derived heterogeneous ZnSe-CoSe nanoparticles encapsulated in hollow N-doped carbon nanocage(ZnSe-CoSe-HNC)was designed by etching with tannic acid as a multifunctional electrocatalyst to boost the polysulfide conversion kinetics in LiSBs.The hollow structure in ZIF ensures large inner voids for sulfur and buffering volume expansions.Abundant exposed ZnSe-CoSe heterogeneous interfaces serve as bifunctional adsorption-catalytic centers to accelerate the conversion kinetics and alleviate the shuttle effect.Together with the highly conductive framework,the ZnSe-CoSeHNC/S cathode exhibits a high initial reversible capacity of 1305.3 m A h g-1at 0.2 C,high-rate capability,and reliable cycling stability under high sulfur loading and lean electrolyte(maintaining at 745 m A h g-1after 200 cycles with a high sulfur loading of 6.4 mg cm-2and a low electrolyte/sulfur ratio of 6μL mg^(-1)).Theoretical calculations have demonstrated the heterostructures of ZnSe-CoSe offer higher binding energy to lithium polysulfides than that of ZnSe or CoSe,facilitating the electron transfer to lithium polysulfides.This work provides a novel heterostructure with superior catalytic ability and hollow conductive architecture,paving the way for the practical application of functional sulfur electrodes. 展开更多
关键词 Lithium-sulfur batteries HETEROSTRUCTURE Conversion Kinetics Hollow structure Bi-directional catalysis
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Deciphering the degradation discrepancy in Ni-rich cathodes with a diverse proportion of[003]crystallographic textures
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作者 Lang Qiu Mengke Zhang +13 位作者 Yang Song Zhenguo Wu Yan-Fang Zhu Jun Zhang Dong Wang Hai-Yan Hu Hong-Wei Li Hang-Rui Liu Xin-Bei Jia Jian Peng shuangqiang chen Zuguang Yang Yao Xiao Xiaodong Guo 《Carbon Energy》 SCIE CSCD 2023年第7期15-26,共12页
The crystal plane plays a very important role in the properties of Ni-rich cathodes.[003]crystallographic texture regulation has been proven to improve structural stability,and yet,the discrepancy of particles with di... The crystal plane plays a very important role in the properties of Ni-rich cathodes.[003]crystallographic texture regulation has been proven to improve structural stability,and yet,the discrepancy of particles with different exposed ratios of[003]in structural attenuation has not been clarified.Herein,we have unraveled comprehensively the structural decay difference for Ni-rich cathodes’primary particles with the different percentages of exposed[003]by regulating the precursor coprecipitation process.The findings based on structural characterization,first-principles calculations,finite element analysis,and electrochemical test reveal that the length and width of particles represent[110]and[003]directions,respectively,and show that cathode particles with a higher[110]/[003]ratio can effectively inhibit structure degradation and intergranular/intragranular crack formation owing to the low oxygen vacancy formation energy on(003)planes and the small local stress on secondary/primary particles.This study may provide guidance for the structural design of layered cathodes. 展开更多
关键词 cracks crystal plane Ni-rich cathodes oxygen vacancy structure degradation
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In-situ structural evolution analysis of Zr-doped Na_(3)V_(2)(PO_(4))_(2)F_(3) coated by N-doped carbon layer as high-performance cathode for sodium-ion batteries 被引量:5
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作者 Chuan Guo Jianwei Yang +7 位作者 Zhiyuan Cui Shuo Qi Qianqian Peng Weiwei Sun Li-Ping Lv Yi Xu Yong Wang shuangqiang chen 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2022年第2期514-523,共10页
With great superiorities in energy density,rate capability and structural stability,Na_(3)V_(2)(PO_(4))_(2) F_(3)(NVPF)has attracted much attentions as cathode of sodium ion battery(SIB),but it also faces challenges o... With great superiorities in energy density,rate capability and structural stability,Na_(3)V_(2)(PO_(4))_(2) F_(3)(NVPF)has attracted much attentions as cathode of sodium ion battery(SIB),but it also faces challenges on its poor intrinsic electronic conductivity and the controversial de/sodiation mechanism.Herein,a series of Zr-doped NVPF coated by N-doped carbon layer(~5 nm in thickness,homogenously)materials are fabricated by a sol-gel method,and the optimized heteroatom-doping amounts of Zr and N doping improve intrinsic properties on enlarging lattice distance and enhancing electronic conductivity,respectively.Specifically,among all samples of Na_(3) V_(2-x)Zr_(x)(PO_(4))_(2) F_(3)/NC(NVPF-Zr-x/NC,x=0,0.01,0.02,0.05,and 0.1),the optimized electrode of NVPF-Zr-0.02/NC delivers high reversible capacities(119.2 mAh g^(-1) at0.5 C),superior rate capability(98.1 mA h g^(-1) at 20 C)and excellent cycling performance.The structural evolution of NVPF-Zr-0.02/NC electrode,in-situ monitored by X-ray diffractometer,follows a step-wise Na-extraction/intercalation mechanism with reversible multi-phase changes,not just a solid-solutionreaction one.Full cells of NVPF-Zr-0.02/NC//hard carbon demonstrate high capacity(99.8 mA h g^(-1) at 0.5 C),high out-put voltage(3.5 V)and good cycling stability.This work is favorable to accelerate the development of high-performance cathode materials and explore possible redox reaction mechanisms of SIBs. 展开更多
关键词 Sodium ion batteries Na_(3)V_(2)(PO_(4))_(2)F_(3) Zr-doping N-doped carbon In-situ structural analysis
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Hierarchical 3D mesoporous silicon@graphene nanoarchitectures for lithium ion batteries with superior performance 被引量:19
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作者 shuangqiang chen Peite Bao +2 位作者 Xiaodan Huang Bing Sun Guoxiu Wang 《Nano Research》 SCIE EI CAS CSCD 2014年第1期85-94,共10页
硅为高能力锂离子电池作为最有希望的阳极材料被认出了。然而,大体积变化在骑车上在充电和分泌物期间导致 Si 电极和快能力损失的弄成粉。Si 电极的这个缺点能被联合与组织良好的 graphene 泡沫克服。在这个工作,层次三维的碳涂的 mes... 硅为高能力锂离子电池作为最有希望的阳极材料被认出了。然而,大体积变化在骑车上在充电和分泌物期间导致 Si 电极和快能力损失的弄成粉。Si 电极的这个缺点能被联合与组织良好的 graphene 泡沫克服。在这个工作,层次三维的碳涂的 mesoporous Si nanospheres@graphene 泡沫(C@Si@GF ) nanoarchitectures 被热水泡喷射成功地综合帮助 chemical-vapor-deposition 和 magnesiothermic 减小方法。同样准备的 nanocomposites 的形态学和结构被扫描电子显微镜学,传播电子显微镜学和拉曼光谱学的地排放描绘。当在锂离子电池作为阳极材料采用了时, C@Si@GF nanocomposites 在 1 A/g,优秀的高率能力和突出的 cyclability 的当前的密度包括 1,200 mAh/g 的一个高特定的能力展出了优异电气化学的性能。验尸,分析鉴别在 200 个周期以后的 3D C@Si@GF 电极的形态学很好被维持。从 mesoporous Si nanospheres 和 graphene 泡沫 nanoarchitectures 的联合产生的 synergistic 效果可以处理 Si 电极的难处理的弄成粉问题。 展开更多
关键词 锂离子电池 电化学性能 石墨 介孔 3D 场发射扫描电子显微镜 纳米复合材料
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构建分级结构碳包覆的MoSSe纳米片/多孔碳微球复合材料显著提升储钾性能 被引量:6
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作者 Mengting Cai Hehe Zhang +11 位作者 Yinggan Zhang Bensheng Xiao Lei Wang Miao Li Ying Wu Baisheng Sa Honggang Liao Li Zhang shuangqiang chen Dong-Liang Peng Ming-Sheng Wang Qiaobao Zhang 《Science Bulletin》 SCIE EI CSCD 2022年第9期933-945,M0004,共14页
研发能够有效缓解储钾过程中巨大的体积变化和加快反应动力学的先进负极材料,对于钾离子电池的实际应用至关重要.为此,本文报道了一种新颖分级结构薄层碳包覆的MoSSe纳米片/多孔碳微球复合负极材料Cs@MoSSe@C,能够显著提升储钾性能.在... 研发能够有效缓解储钾过程中巨大的体积变化和加快反应动力学的先进负极材料,对于钾离子电池的实际应用至关重要.为此,本文报道了一种新颖分级结构薄层碳包覆的MoSSe纳米片/多孔碳微球复合负极材料Cs@MoSSe@C,能够显著提升储钾性能.在这种新颖结构中,多孔碳微球骨架上锚定的分级MoSSe纳米片具有较大的层间距和丰富的阴离子空位,有利于钾离子的快速嵌入、脱出,并能提供丰富的钾离子存储活性位点.同时,薄碳层和高度多孔的碳微球骨架可有效缓解充放电过程中体积膨胀和加快反应动力学,并维持电极结构稳定性.因此,研发的Cs@MoSSe@C负极材料及其组配的全电池都表现出了优异的循环稳定性和出色的倍率性能.此外,通过原位透射电镜技术、原位拉曼技术和非原位显微技术结合理论模拟揭示了其嵌入-转化反应储钾机理和获得优异电化学性能的本质原因.该工作为高性能过渡金属硫族化合物储钾负极材料的构筑与性能优化提供了实验依据和新策略. 展开更多
关键词 负极材料 充放电过程 分级结构 过渡金属硫族化合物 电化学性能 电极结构 转化反应 钾离子
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Activated graphene with tailored pore structure parameters for long cycle-life lithium-sulfur batteries 被引量:4
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作者 Mingbo Zheng Songtao Zhang +3 位作者 shuangqiang chen Zixia Lin Huan Pang Yan Yu 《Nano Research》 SCIE EI CAS CSCD 2017年第12期4305-4317,共13页
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FeBO_(3) as a low cost and high-performance anode material for sodium-ion batteries
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作者 Baozhu Wu Shuo Qi +8 位作者 Xikai Wu Haoli Wang Qiangqiang Zhuang Huimin Yi Pu Xu Zhennan Xiong Gejun Shi shuangqiang chen Baofeng Wang 《Chinese Chemical Letters》 SCIE CAS CSCD 2021年第10期3113-3117,共5页
The research of borate materials as sodium-ion batteries(SIBs) anode is still in the early stages,but the boron polyoxoanions are attracting intense interest due to their low atomic weight and high electronegative fea... The research of borate materials as sodium-ion batteries(SIBs) anode is still in the early stages,but the boron polyoxoanions are attracting intense interest due to their low atomic weight and high electronegative features.In this work,FeBO_(3) was prepared with low-cost raw materials and evaluated as SIBs anode.The FeBO_(3) shows a high reversible capacity of 328 mAh/g at the current density of 0.4 A/g.In addition,the electrochemical performance of FeBO_(3) can be improved by carbon coating.The prepared carbon-coated FeBO_(3) composite has a reversible capacity of 426 mAh/g(at 0.4 A/g) and an outstanding rate capability of 272 mAh/g(at 1.6 A/g).Furthermore,the sodium storage mechanism of FeBO_(3) was studied by in-situ XRD and ex-situ XPS. 展开更多
关键词 FeBO_(3) Metal borates Anode materials Sodium-ion batteries Sodium storage mechanism
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