首页> 外文期刊>纳微快报:英文版 >Strongly Coupled 2D Transition Metal Chalcogenide-MXene-Carbonaceous Nanoribbon Heterostructures with Ultrafast Ion Transport for Boosting Sodium/Potassium Ions Storage
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Strongly Coupled 2D Transition Metal Chalcogenide-MXene-Carbonaceous Nanoribbon Heterostructures with Ultrafast Ion Transport for Boosting Sodium/Potassium Ions Storage

机译:强耦合的2D过渡金属硫胺化物 - 乳腺 - 碳质纳米碳纳米甲醛异质结构,具有超速离子传输,用于升压钠/钾离子储存

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摘要

Combining with the advantages of two-dimensional(2D)nanomaterials,MXenes have shown great potential in next generation rechargeable batteries.Similar with other 2D materials,MXenes generally suffer severe self-agglomeration,low capacity,and unsatisfied durability,particularly for larger sodium/potassium ions,compromising their practical values.In this work,a novel ternary heterostructure self-assembled from transition metal selenides(MSe,M=Cu,Ni,and Co),MXene nanosheets and N-rich carbonaceous nanoribbons(CNRibs)with ultrafast ion transport properties is designed for sluggish sodium-ion(SIB)and potassium-ion(PIB)batteries.Benefiting from the diverse chemical characteristics,the positively charged MSe anchored onto the electronegative hydroxy(-OH)functionalized MXene surfaces through electrostatic adsorption,while the fungal-derived CNRibs bonded with the other side of MXene through amino bridging and hydrogen bonds.This unique MXene-based heterostructure prevents the restacking of 2D materials,increases the intrinsic conductivity,and most importantly,provides ultrafast interfacial ion transport pathways and extra surficial and interfacial storage sites,and thus,boosts the high-rate storage performances in SIB and PIB applications.Both the quantitatively kinetic analysis and the density functional theory(DFT)calculations revealed that the interfacial ion transport is several orders higher than that of the pristine MXenes,which delivered much enhanced Na+(536.3 mAh g^(−1)@0.1 A g^(−1))and K^(+)(305.6 mAh g^(−1)@1.0 A g^(−1))storage capabilities and excel-lent long-term cycling stability.Therefore,this work provides new insights into 2D materials engineering and low-cost,but kinetically sluggish post-Li batteries.
机译:结合二维(2D)纳米材料的优点,MxENES在下一代可充电电池中显示出很大的潜力。与其他2D材料相似,MxENE通常遭受严重的自聚集,低容量和不满足的耐久性,特别是对于较大的钠/钾离子,损害了它们的实际价值。在这项工作中,一种新的三元异性结构从过渡金属硒化酯(MSE,M = Cu,Ni和Co),MxEne纳米蛋白酶和富氮碳质纳米纤维(CNRIBs)自组装,具有超额外的离子运输特性专为缓慢的钠离子(SIB)和钾离子(PIB)电池而设计。从多样化的化学特性,通过静电吸附锚定的带正电荷的MSE锚定的电气羟基(-OH)官能化MXENE表面,而通过氨基桥接和氢键与MxENE的另一侧粘合的真菌衍生的CNRIB。独特的蒙薄的异质结构可防止2D米的重新包装节目,增加了内在电导率,最重要的是,提供超快界面离子传输途径和额外的曲线和界面储存位点,从而提高SIB和PIB应用中的高速存储性能。定量动力学分析和密度函数理论(DFT)计算显示,界面离子传输是几种高于原始MxEN的订单,其递送了大量增强的Na +(536.3mah g ^ (-1)@ 0.1a g ^( - 1))和k ^( +)(305.6 mah g ^(-1) @1.0 a g ^( - 1))存储能力和Excel-lent的长期循环稳定性。因此,这项工作为2D材料工程和低成本提供了新的见解,但动力学迟缓的后李电池。

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  • 来源
    《纳微快报:英文版》 |2021年第007期|P.153-172|共20页
  • 作者单位

    Sino-Russian International Joint Laboratory for Clean Energy and Energy Conversion Technology International Center of Future Science College of Physics Jilin University Changchun 130012 People’s Republic of ChinaCentre for Materials Science School of Chemistry and Physics Queensland University of Technology(QUT) 2 George Street Brisbane QLD 4001 Australia;

    Key Laboratory of Advanced Energy Materials Chemistry(Ministry of Education) College of Chemistry Nankai University Tianjin 300071 People’s Republic of China;

    Sino-Russian International Joint Laboratory for Clean Energy and Energy Conversion Technology International Center of Future Science College of Physics Jilin University Changchun 130012 People’s Republic of China;

    Sino-Russian International Joint Laboratory for Clean Energy and Energy Conversion Technology International Center of Future Science College of Physics Jilin University Changchun 130012 People’s Republic of China;

    Sino-Russian International Joint Laboratory for Clean Energy and Energy Conversion Technology International Center of Future Science College of Physics Jilin University Changchun 130012 People’s Republic of China;

    Sino-Russian International Joint Laboratory for Clean Energy and Energy Conversion Technology International Center of Future Science College of Physics Jilin University Changchun 130012 People’s Republic of China;

    Centre for Materials Science School of Chemistry and Physics Queensland University of Technology(QUT) 2 George Street Brisbane QLD 4001 Australia;

    Sino-Russian International Joint Laboratory for Clean Energy and Energy Conversion Technology International Center of Future Science College of Physics Jilin University Changchun 130012 People’s Republic of China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 有机化学;
  • 关键词

    Ti_(3)C_(2)T_(x)MXene; Heterostructure; Transition metal chalcogenide; Sodium and potassium-ions batteries; DFT calculation;

    机译:Ti_(3)C_(2)T_(x)mxene;异质结构;过渡金属硫属化物;钠和钾离子电池;DFT计算;
  • 入库时间 2022-08-19 04:58:23
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