Template-Free Preparation of Crystalline Ge Nanowire Film Electrodes via an Electrochemical Liquid–Liquid–Solid Process in Water at Ambient Pressure and Temperature for Energy Storage
Тип публикации: Journal Article
Дата публикации: 2012-08-17
scimago Q1
wos Q1
БС1
SJR: 2.967
CiteScore: 14.9
Impact factor: 9.1
ISSN: 15306984, 15306992
PubMed ID:
22900746
General Chemistry
Condensed Matter Physics
General Materials Science
Mechanical Engineering
Bioengineering
Краткое описание
The direct electrodeposition of crystalline germanium (Ge) nanowire film electrodes from an aqueous solution of dissolved GeO(2) using discrete 'flux' nanoparticles capable of dissolving Ge(s) has been demonstrated. Electrodeposition of Ge at inert electrode substrates decorated with small (<100 nm), discrete indium (In) nanoparticles resulted in crystalline Ge nanowire films with definable nanowire diameters and densities without the need for a physical or chemical template. The Ge nanowires exhibited strong polycrystalline character as-deposited, with approximate crystallite dimensions of 20 nm and a mixed orientation of the crystallites along the length of the nanowire. Energy dispersive spectroscopic elemental mapping of individual Ge nanowires showed that the In nanoparticles remained at the base of each nanowire, indicating good electrical communication between the Ge nanowire and the underlying conductive support. As-deposited Ge nanowire films prepared on Cu supports were used without further processing as Li(+) battery anodes. Cycling studies performed at 1 C (1624 mA g(-1)) indicated the native Ge nanowire films supported stable discharge capacities at the level of 973 mA h g(-1), higher than analogous Ge nanowire film electrodes prepared through an energy-intensive vapor-liquid-solid nanowire growth process. The cumulative data show that ec-LLS is a viable method for directly preparing a functional, high-activity nanomaterials-based device component. The work presented here is a step toward the realization of simple processes that make fully functional energy conversion/storage technologies based on crystalline inorganic semiconductors entirely through benchtop, aqueous chemistry and electrochemistry without time- or energy-intensive process steps.
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Gu J. et al. Template-Free Preparation of Crystalline Ge Nanowire Film Electrodes via an Electrochemical Liquid–Liquid–Solid Process in Water at Ambient Pressure and Temperature for Energy Storage // Nano Letters. 2012. Vol. 12. No. 9. pp. 4617-4623.
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Gu J., Collins S., Carim A., Xiaoguang H., Bartlett B., Maldonado S. Template-Free Preparation of Crystalline Ge Nanowire Film Electrodes via an Electrochemical Liquid–Liquid–Solid Process in Water at Ambient Pressure and Temperature for Energy Storage // Nano Letters. 2012. Vol. 12. No. 9. pp. 4617-4623.
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TY - JOUR
DO - 10.1021/nl301912f
UR - https://doi.org/10.1021/nl301912f
TI - Template-Free Preparation of Crystalline Ge Nanowire Film Electrodes via an Electrochemical Liquid–Liquid–Solid Process in Water at Ambient Pressure and Temperature for Energy Storage
T2 - Nano Letters
AU - Gu, Junsi
AU - Collins, S. M.
AU - Carim, Azhar
AU - Xiaoguang, Hao
AU - Bartlett, Bart
AU - Maldonado, Stephen
PY - 2012
DA - 2012/08/17
PB - American Chemical Society (ACS)
SP - 4617-4623
IS - 9
VL - 12
PMID - 22900746
SN - 1530-6984
SN - 1530-6992
ER -
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@article{2012_Gu,
author = {Junsi Gu and S. M. Collins and Azhar Carim and Hao Xiaoguang and Bart Bartlett and Stephen Maldonado},
title = {Template-Free Preparation of Crystalline Ge Nanowire Film Electrodes via an Electrochemical Liquid–Liquid–Solid Process in Water at Ambient Pressure and Temperature for Energy Storage},
journal = {Nano Letters},
year = {2012},
volume = {12},
publisher = {American Chemical Society (ACS)},
month = {aug},
url = {https://doi.org/10.1021/nl301912f},
number = {9},
pages = {4617--4623},
doi = {10.1021/nl301912f}
}
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MLA
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Gu, Junsi, et al. “Template-Free Preparation of Crystalline Ge Nanowire Film Electrodes via an Electrochemical Liquid–Liquid–Solid Process in Water at Ambient Pressure and Temperature for Energy Storage.” Nano Letters, vol. 12, no. 9, Aug. 2012, pp. 4617-4623. https://doi.org/10.1021/nl301912f.