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[資源]
Chem. Rev文章——Nanowire Electrodes for Electrochemical Energy Storage Devices
2014年新晉杰青、武漢理工大學(xué)麥立強教授剛剛在chemical review上發(fā)表了一篇名為“Nanowire Electrodes for Electrochemical Energy Storage Devices”的綜述文章,全文35頁,參考文獻418篇。
在最近十幾年中,納米線結(jié)構(gòu)吸引了全世界科學(xué)家們大量的研究興趣。納米線研究領(lǐng)域的領(lǐng)軍人物是哈佛大學(xué)的Charles M. Lieber教授及其學(xué)生——加利福尼亞大學(xué)伯克利分校的楊培東教授。
這篇綜述文章總結(jié)了納米線基電化學(xué)儲能設(shè)備的最新研究進展,重點闡述了儲能設(shè)備領(lǐng)域中的原位電化學(xué)探索、優(yōu)化策略以及未來的展望。
Liqiang Mai received his Ph.D. degree from Wuhan University of Technology in 2004. He then carried out postdoctoral research in the laboratory of Professor Zhonglin Wang at Georgia Institute of Technology in 2006–2007 and worked as an advanced research scholar in the laboratory of Professor Charles M. Lieber at Harvard University in 2008–2011. He is Chair Professor of Materials Science and Engineering at Wuhan University of Technology and Executive Director of the WUT-Harvard Joint Nano Key Laboratory. He has published more than 90 papers tagged by SCI in peer-reviewed journals such as Nature Nanotechnology, Nature Communications, Proceedings of the National Academy of Sciences, Journal of the American Chemical Society, Nano Letters, Advanced Materials. His interests include nanowire materials, micro/nanoenergy storage devices, and energy-based nano–bio interface.
Biography
1. Introduction
2. Nanowire Devices for Electrochemical Probing
2.1. Single Nanowire for ex-Situ Diagnosis
2.2. Single Nanowire for in-Situ Diagnosis
2.2.1. In-Situ TEM Diagnosis
2.2.2. Other Methods for in-Situ Diagnosis
3. Challenges and Optimization Strategies of Nanowire Electrodes
3.1. Restrainment of Conductivity Decrease during Cycling
3.2. Suppression of Structure Degradation
3.3. Reduction of Self-Aggregation
4. Interfaces of Nanowire Electrodes
4.1. Interfaces between Electrodes and Electrolytes
4.2. Interfaces Inside the Heterostructured Composite Nanowires
5. Nanochemistry for Controlled Synthesis of Nanowire Electrodes
5.1. Solution-Phase Route
5.1.1. Hydro(solvo)thermal Strategy
5.1.2. Microemulsion Strategy
5.2. Hard Template Methods
5.2.1. Template Filling Strategy
5.2.2. Electrochemical Deposition
5.2.3. Electrophoretic Deposition
5.2.4. Electrospinning Strategy
5.3. Oriented-Attachment Method
6. Nanowire Electrodes for Advanced and Next-Generation Energy Storage Devices
6.1. Nanowire Electrodes for Advanced Lithium-Ion Batteries
6.1.1. Nanowire Electrodes for Ultrafast Lithium-Ion Batteries
6.1.2. Nanowire Electrodes for Flexible Lithium-Ion Batteries
6.2. Nanowire Electrodes for Advanced Sodium-Ion Batteries
6.3. Nanowire Electrodes for Li–Air Batteries
6.4. Nanowire Electrodes for Li–S Batteries
6.5. Nanowire Electrodes for Supercapacitors
6.6. Nanowire Electrodes for Micro/Nanoscale Energy Storage Devices
7. Concluding Remarks![Chem. Rev文章——Nanowire Electrodes for Electrochemical Energy Storage Devices]()
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[ Last edited by 羅馬里奧 on 2014-10-9 at 08:28 ] |
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