Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical Performance
Abstract Stretchable lithium batteries have attracted considerable attention as components in future electronic devices, such as wearable devices, sensors, and body‐attachment healthcare devices. However, several challenges still exist in the bid to obtain excellent electrochemical properties for st...
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doaj-37cb921e6b9b42989d9157119152718e2020-11-25T03:31:47ZengWileyAdvanced Science2198-38442020-09-01717n/an/a10.1002/advs.202001358Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical PerformanceO. Hyeon Kwon0Jang Hyeok Oh1Bobae Gu2Min Su Jo3Se Hwan Oh4Yun Chan Kang5Jae‐Kwang Kim6Sang Mun Jeong7Jung Sang Cho8Department of Energy Convergence Engineering Cheongju University Cheongju Chungbuk 28503 Republic of KoreaDepartment of Engineering Chemistry Chungbuk National University Cheongju Chungbuk 361‐763 Republic of KoreaDepartment of Energy Convergence Engineering Cheongju University Cheongju Chungbuk 28503 Republic of KoreaDepartment of Engineering Chemistry Chungbuk National University Cheongju Chungbuk 361‐763 Republic of KoreaDepartment of Engineering Chemistry Chungbuk National University Cheongju Chungbuk 361‐763 Republic of KoreaDepartment of Materials Science and Engineering Korea University Anam‐Dong, Seongbuk‐Gu Seoul 136‐713 Republic of KoreaDepartment of Energy Convergence Engineering Cheongju University Cheongju Chungbuk 28503 Republic of KoreaDepartment of Chemical Engineering Chungbuk National University Cheongju Chungbuk 361‐763 Republic of KoreaDepartment of Engineering Chemistry Chungbuk National University Cheongju Chungbuk 361‐763 Republic of KoreaAbstract Stretchable lithium batteries have attracted considerable attention as components in future electronic devices, such as wearable devices, sensors, and body‐attachment healthcare devices. However, several challenges still exist in the bid to obtain excellent electrochemical properties for stretchable batteries. Here, a unique stretchable lithium full‐cell battery is designed using 1D nanofiber active materials, stretchable gel polymer electrolyte, and wrinkle structure electrodes. A SnO2/C nanofiber anode and a LiFePO4/C nanofiber cathode introduce meso‐ and micropores for lithium‐ion diffusion and electrolyte penetration. The stretchable full‐cell consists of an elastic poly(dimethylsiloxane) (PDMS) wrapping film, SnO2/C and LiFePO4/C nanofiber electrodes with a wrinkle structure fixed on the PDMS wrapping film by an adhesive polymer, and a gel polymer electrolyte. The specific capacity of the stretchable full‐battery is maintained at 128.3 mAh g−1 (capacity retention of 92%) even after a 30% strain, as compared with 136.8 mAh g−1 before strain. The energy densities are 458.8 Wh kg−1 in the released state and 423.4 Wh kg−1 in the stretched state (based on the electrode), respectively. The high capacity and stability in the stretched state demonstrate the potential of the stretchable battery to overcome its limitations.https://doi.org/10.1002/advs.202001358lithium‐ion batteriesnanofibersstretchable batteriesstretchable gel polymer electrolyteswrinkle structure |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
O. Hyeon Kwon Jang Hyeok Oh Bobae Gu Min Su Jo Se Hwan Oh Yun Chan Kang Jae‐Kwang Kim Sang Mun Jeong Jung Sang Cho |
spellingShingle |
O. Hyeon Kwon Jang Hyeok Oh Bobae Gu Min Su Jo Se Hwan Oh Yun Chan Kang Jae‐Kwang Kim Sang Mun Jeong Jung Sang Cho Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical Performance Advanced Science lithium‐ion batteries nanofibers stretchable batteries stretchable gel polymer electrolytes wrinkle structure |
author_facet |
O. Hyeon Kwon Jang Hyeok Oh Bobae Gu Min Su Jo Se Hwan Oh Yun Chan Kang Jae‐Kwang Kim Sang Mun Jeong Jung Sang Cho |
author_sort |
O. Hyeon Kwon |
title |
Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical Performance |
title_short |
Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical Performance |
title_full |
Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical Performance |
title_fullStr |
Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical Performance |
title_full_unstemmed |
Porous SnO2/C Nanofiber Anodes and LiFePO4/C Nanofiber Cathodes with a Wrinkle Structure for Stretchable Lithium Polymer Batteries with High Electrochemical Performance |
title_sort |
porous sno2/c nanofiber anodes and lifepo4/c nanofiber cathodes with a wrinkle structure for stretchable lithium polymer batteries with high electrochemical performance |
publisher |
Wiley |
series |
Advanced Science |
issn |
2198-3844 |
publishDate |
2020-09-01 |
description |
Abstract Stretchable lithium batteries have attracted considerable attention as components in future electronic devices, such as wearable devices, sensors, and body‐attachment healthcare devices. However, several challenges still exist in the bid to obtain excellent electrochemical properties for stretchable batteries. Here, a unique stretchable lithium full‐cell battery is designed using 1D nanofiber active materials, stretchable gel polymer electrolyte, and wrinkle structure electrodes. A SnO2/C nanofiber anode and a LiFePO4/C nanofiber cathode introduce meso‐ and micropores for lithium‐ion diffusion and electrolyte penetration. The stretchable full‐cell consists of an elastic poly(dimethylsiloxane) (PDMS) wrapping film, SnO2/C and LiFePO4/C nanofiber electrodes with a wrinkle structure fixed on the PDMS wrapping film by an adhesive polymer, and a gel polymer electrolyte. The specific capacity of the stretchable full‐battery is maintained at 128.3 mAh g−1 (capacity retention of 92%) even after a 30% strain, as compared with 136.8 mAh g−1 before strain. The energy densities are 458.8 Wh kg−1 in the released state and 423.4 Wh kg−1 in the stretched state (based on the electrode), respectively. The high capacity and stability in the stretched state demonstrate the potential of the stretchable battery to overcome its limitations. |
topic |
lithium‐ion batteries nanofibers stretchable batteries stretchable gel polymer electrolytes wrinkle structure |
url |
https://doi.org/10.1002/advs.202001358 |
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