Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode
The effect of particle sizes of Mg on Magnesium-Graphene nano sheets (Mg-GNS (C-π)) interaction when used as an anode of primary battery was evaluated. GNS was synthesized using the modified Hummers method, while Mg/GNS composite with 10–40% Mg was prepared by a facile impregnation method. XRD data...
Published in: | Colloids and Interface Science Communications |
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Elsevier B.V.
2022
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2-s2.0-85126143305 Siburian R.; Paiman S.; Hutagalung F.; Ali A.M.M.; Simatupang L.; Goei R.; Rusop M.M. Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode 2022 Colloids and Interface Science Communications 48 10.1016/j.colcom.2022.100612 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85126143305&doi=10.1016%2fj.colcom.2022.100612&partnerID=40&md5=7efb07110582873f49be849b40ac2b40 The effect of particle sizes of Mg on Magnesium-Graphene nano sheets (Mg-GNS (C-π)) interaction when used as an anode of primary battery was evaluated. GNS was synthesized using the modified Hummers method, while Mg/GNS composite with 10–40% Mg was prepared by a facile impregnation method. XRD data of Mg/GNS shows peaks of C(002) and Mg(102) at 2θ = 26.77° and 44.69°, respectively, indicating Mg metals were successfully introduced onto GNS surfaces. These data are consistent with the EDX spectrum which shows peaks of C (0.277 keV) and Mg (1.253 keV). Mg 10%/GNS (3.871 μm) and Mg 30%/GNS (4.485 μm) have the smallest and largest metal particle size deposited, respectively. Mg 10%/GNS (62.9 μS/cm2) has a higher electrical conductivity value than the bare GNS (61.4 μS/cm2) and commercial primary battery anode (Zn plate, 35 μS/cm2). The results obtained show that GNS is able to modify the metallic character of Mg (p-s interaction). Furthermore, the presence of Mg metal deposition on the GNS surface is able to produce Mg/GNS with increased electrical conductivity so that it could be used as an alternative anode primary battery. © 2022 Elsevier B.V. 22150382 English Article All Open Access; Gold Open Access |
author |
Siburian R.; Paiman S.; Hutagalung F.; Ali A.M.M.; Simatupang L.; Goei R.; Rusop M.M. |
spellingShingle |
Siburian R.; Paiman S.; Hutagalung F.; Ali A.M.M.; Simatupang L.; Goei R.; Rusop M.M. Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode |
author_facet |
Siburian R.; Paiman S.; Hutagalung F.; Ali A.M.M.; Simatupang L.; Goei R.; Rusop M.M. |
author_sort |
Siburian R.; Paiman S.; Hutagalung F.; Ali A.M.M.; Simatupang L.; Goei R.; Rusop M.M. |
title |
Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode |
title_short |
Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode |
title_full |
Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode |
title_fullStr |
Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode |
title_full_unstemmed |
Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode |
title_sort |
Facile method to synthesize of magnesium-graphene nano sheets for candidate of primary battery electrode |
publishDate |
2022 |
container_title |
Colloids and Interface Science Communications |
container_volume |
48 |
container_issue |
|
doi_str_mv |
10.1016/j.colcom.2022.100612 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85126143305&doi=10.1016%2fj.colcom.2022.100612&partnerID=40&md5=7efb07110582873f49be849b40ac2b40 |
description |
The effect of particle sizes of Mg on Magnesium-Graphene nano sheets (Mg-GNS (C-π)) interaction when used as an anode of primary battery was evaluated. GNS was synthesized using the modified Hummers method, while Mg/GNS composite with 10–40% Mg was prepared by a facile impregnation method. XRD data of Mg/GNS shows peaks of C(002) and Mg(102) at 2θ = 26.77° and 44.69°, respectively, indicating Mg metals were successfully introduced onto GNS surfaces. These data are consistent with the EDX spectrum which shows peaks of C (0.277 keV) and Mg (1.253 keV). Mg 10%/GNS (3.871 μm) and Mg 30%/GNS (4.485 μm) have the smallest and largest metal particle size deposited, respectively. Mg 10%/GNS (62.9 μS/cm2) has a higher electrical conductivity value than the bare GNS (61.4 μS/cm2) and commercial primary battery anode (Zn plate, 35 μS/cm2). The results obtained show that GNS is able to modify the metallic character of Mg (p-s interaction). Furthermore, the presence of Mg metal deposition on the GNS surface is able to produce Mg/GNS with increased electrical conductivity so that it could be used as an alternative anode primary battery. © 2022 |
publisher |
Elsevier B.V. |
issn |
22150382 |
language |
English |
format |
Article |
accesstype |
All Open Access; Gold Open Access |
record_format |
scopus |
collection |
Scopus |
_version_ |
1809677892032921600 |