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Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries

Here, we report the solution phase synthesis of axial heterostructure Si and Ge (hSG) nanowires (NWs). The NWs were grown in a high boiling point solvent from a low-cost Sn powder to achieve a powder form product which represents an attractive route from lab-scale to commercial application. Slurry p...

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Autores principales: Adegoke, Temilade Esther, Abdul Ahad, Syed, Bangert, Ursel, Geaney, Hugh, Ryan, Kevin M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10662145/
https://www.ncbi.nlm.nih.gov/pubmed/38024317
http://dx.doi.org/10.1039/d3na00648d
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author Adegoke, Temilade Esther
Abdul Ahad, Syed
Bangert, Ursel
Geaney, Hugh
Ryan, Kevin M.
author_facet Adegoke, Temilade Esther
Abdul Ahad, Syed
Bangert, Ursel
Geaney, Hugh
Ryan, Kevin M.
author_sort Adegoke, Temilade Esther
collection PubMed
description Here, we report the solution phase synthesis of axial heterostructure Si and Ge (hSG) nanowires (NWs). The NWs were grown in a high boiling point solvent from a low-cost Sn powder to achieve a powder form product which represents an attractive route from lab-scale to commercial application. Slurry processed anodes of the NWs were investigated in half-cell (versus Li-foil) and full-cell (versus NMC811) configurations of a lithium ion battery (LIB). The hSG NW anodes yielded capacities of 1040 mA h g(−1) after 150 cycles which corresponds to a 2.8 times increase compared to a standard graphite (372 mA h g(−1)) anode. Given the impressive specific and areal capacities of the hSG anodes, a full-cell test against a high areal capacity NMC811 cathode was examined. In full-cell configuration, use of the hSG anode resulted in a massive anode mass reduction of 50.7% compared to a standard graphite anode. The structural evolution of the hSG NW anodes into an alloyed SiGe porous mesh network was also investigated using STEM, EDX and Raman spectroscopy as a function of cycle number to fully elucidate the lithiation/delithiation mechanism of the promising anode material.
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spelling pubmed-106621452023-09-01 Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries Adegoke, Temilade Esther Abdul Ahad, Syed Bangert, Ursel Geaney, Hugh Ryan, Kevin M. Nanoscale Adv Chemistry Here, we report the solution phase synthesis of axial heterostructure Si and Ge (hSG) nanowires (NWs). The NWs were grown in a high boiling point solvent from a low-cost Sn powder to achieve a powder form product which represents an attractive route from lab-scale to commercial application. Slurry processed anodes of the NWs were investigated in half-cell (versus Li-foil) and full-cell (versus NMC811) configurations of a lithium ion battery (LIB). The hSG NW anodes yielded capacities of 1040 mA h g(−1) after 150 cycles which corresponds to a 2.8 times increase compared to a standard graphite (372 mA h g(−1)) anode. Given the impressive specific and areal capacities of the hSG anodes, a full-cell test against a high areal capacity NMC811 cathode was examined. In full-cell configuration, use of the hSG anode resulted in a massive anode mass reduction of 50.7% compared to a standard graphite anode. The structural evolution of the hSG NW anodes into an alloyed SiGe porous mesh network was also investigated using STEM, EDX and Raman spectroscopy as a function of cycle number to fully elucidate the lithiation/delithiation mechanism of the promising anode material. RSC 2023-09-01 /pmc/articles/PMC10662145/ /pubmed/38024317 http://dx.doi.org/10.1039/d3na00648d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Adegoke, Temilade Esther
Abdul Ahad, Syed
Bangert, Ursel
Geaney, Hugh
Ryan, Kevin M.
Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries
title Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries
title_full Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries
title_fullStr Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries
title_full_unstemmed Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries
title_short Solution processable Si/Ge heterostructure NWs enabling anode mass reduction for practical full-cell Li-ion batteries
title_sort solution processable si/ge heterostructure nws enabling anode mass reduction for practical full-cell li-ion batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10662145/
https://www.ncbi.nlm.nih.gov/pubmed/38024317
http://dx.doi.org/10.1039/d3na00648d
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