Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion Batteries
Silicon microwire arrays embedded in Cu present exceptional performance as anode material in Li ion batteries. The processes occurring during the first charging cycles of batteries with this anode are essential for good performance. This paper sheds light on the electrochemical and structural proper...
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doaj-2d3ce9a6251a41209d22e0942cbf501d2020-11-24T23:10:41ZengMDPI AGMaterials1996-19442013-02-016262663610.3390/ma6020626Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion BatteriesHelmut FöllJürgen CarstensenEnrique Quiroga-GonzálezSilicon microwire arrays embedded in Cu present exceptional performance as anode material in Li ion batteries. The processes occurring during the first charging cycles of batteries with this anode are essential for good performance. This paper sheds light on the electrochemical and structural properties of the anodes during the first charging cycles. Scanning Electron Microscopy, X-ray diffractommetry, and fast Fourier transformation impedance spectroscopy are used for the characterization. It was found that crystalline phases with high Li content are obtained after the first lithiation cycle, while for the second lithiation just crystalline phases with less Li are observable, indicating that the lithiated wires become amorphous upon cycling. The formation of a solid electrolyte interface of around 250 nm during the first lithiation cycle is evidenced, and is considered a necessary component for the good cycling performance of the wires. Analog to voltammetric techniques, impedance spectroscopy is confirmed as a powerful tool to identify the formation of the different Si-Li phases.http://www.mdpi.com/1996-1944/6/2/626Li-ion batteriesSi microwire arraySi anodein situ impedance spectroscopyhigh capacitysolid electrolyte interface (SEI) formationSi-Li phases |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Helmut Föll Jürgen Carstensen Enrique Quiroga-González |
spellingShingle |
Helmut Föll Jürgen Carstensen Enrique Quiroga-González Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion Batteries Materials Li-ion batteries Si microwire array Si anode in situ impedance spectroscopy high capacity solid electrolyte interface (SEI) formation Si-Li phases |
author_facet |
Helmut Föll Jürgen Carstensen Enrique Quiroga-González |
author_sort |
Helmut Föll |
title |
Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion Batteries |
title_short |
Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion Batteries |
title_full |
Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion Batteries |
title_fullStr |
Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion Batteries |
title_full_unstemmed |
Structural and Electrochemical Investigation during the First Charging Cycles of Silicon Microwire Array Anodes for High Capacity Lithium Ion Batteries |
title_sort |
structural and electrochemical investigation during the first charging cycles of silicon microwire array anodes for high capacity lithium ion batteries |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2013-02-01 |
description |
Silicon microwire arrays embedded in Cu present exceptional performance as anode material in Li ion batteries. The processes occurring during the first charging cycles of batteries with this anode are essential for good performance. This paper sheds light on the electrochemical and structural properties of the anodes during the first charging cycles. Scanning Electron Microscopy, X-ray diffractommetry, and fast Fourier transformation impedance spectroscopy are used for the characterization. It was found that crystalline phases with high Li content are obtained after the first lithiation cycle, while for the second lithiation just crystalline phases with less Li are observable, indicating that the lithiated wires become amorphous upon cycling. The formation of a solid electrolyte interface of around 250 nm during the first lithiation cycle is evidenced, and is considered a necessary component for the good cycling performance of the wires. Analog to voltammetric techniques, impedance spectroscopy is confirmed as a powerful tool to identify the formation of the different Si-Li phases. |
topic |
Li-ion batteries Si microwire array Si anode in situ impedance spectroscopy high capacity solid electrolyte interface (SEI) formation Si-Li phases |
url |
http://www.mdpi.com/1996-1944/6/2/626 |
work_keys_str_mv |
AT helmutfoll structuralandelectrochemicalinvestigationduringthefirstchargingcyclesofsiliconmicrowirearrayanodesforhighcapacitylithiumionbatteries AT jurgencarstensen structuralandelectrochemicalinvestigationduringthefirstchargingcyclesofsiliconmicrowirearrayanodesforhighcapacitylithiumionbatteries AT enriquequirogagonzalez structuralandelectrochemicalinvestigationduringthefirstchargingcyclesofsiliconmicrowirearrayanodesforhighcapacitylithiumionbatteries |
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1725606094869364736 |