Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion battery
Abstract Development of high-energy-density anode is crucial for practical application of Na-ion battery as a post Li-ion battery. Hard carbon (HC), though a promising anode candidate, still has bottlenecks of insufficient capacity and unclear microscopic picture. Usage of the micropore has been rec...
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2021-04-01
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Online Access: | https://doi.org/10.1038/s41524-021-00515-7 |
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doaj-702e3def5019403c8a011db6ae213fec2021-04-11T11:18:32ZengNature Publishing Groupnpj Computational Materials2057-39602021-04-01711810.1038/s41524-021-00515-7Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion batteryYong Youn0Bo Gao1Azusa Kamiyama2Kei Kubota3Shinichi Komaba4Yoshitaka Tateyama5Center for Green Research on Energy and Environmental Materials (GREEN) and International Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS)Center for Green Research on Energy and Environmental Materials (GREEN) and International Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS)Department of Applied Chemistry, Tokyo University of ScienceDepartment of Applied Chemistry, Tokyo University of ScienceDepartment of Applied Chemistry, Tokyo University of ScienceCenter for Green Research on Energy and Environmental Materials (GREEN) and International Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS)Abstract Development of high-energy-density anode is crucial for practical application of Na-ion battery as a post Li-ion battery. Hard carbon (HC), though a promising anode candidate, still has bottlenecks of insufficient capacity and unclear microscopic picture. Usage of the micropore has been recently discussed, however, the underlying sodiation mechanism is still controversial. Herein we examined the origin for the high-capacity sodiation of HC, based on density functional theory calculations. We demonstrated that nanometer-size Na cluster with 3–6 layers is energetically stable between two sheets of graphene, a model micropore, in addition to the adsorption and intercalation mechanisms. The finding well explains the extended capacity over typical 300 mAhg−1, up to 478 mAhg−1 recently found in the MgO-templated HC. We also clarified that the MgO-template can produce suitable nanometer-size micropores with slightly defective graphitic domains in HC. The present study considerably promotes the atomistic theory of sodiation mechanism and complicated HC science.https://doi.org/10.1038/s41524-021-00515-7 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yong Youn Bo Gao Azusa Kamiyama Kei Kubota Shinichi Komaba Yoshitaka Tateyama |
spellingShingle |
Yong Youn Bo Gao Azusa Kamiyama Kei Kubota Shinichi Komaba Yoshitaka Tateyama Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion battery npj Computational Materials |
author_facet |
Yong Youn Bo Gao Azusa Kamiyama Kei Kubota Shinichi Komaba Yoshitaka Tateyama |
author_sort |
Yong Youn |
title |
Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion battery |
title_short |
Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion battery |
title_full |
Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion battery |
title_fullStr |
Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion battery |
title_full_unstemmed |
Nanometer-size Na cluster formation in micropore of hard carbon as origin of higher-capacity Na-ion battery |
title_sort |
nanometer-size na cluster formation in micropore of hard carbon as origin of higher-capacity na-ion battery |
publisher |
Nature Publishing Group |
series |
npj Computational Materials |
issn |
2057-3960 |
publishDate |
2021-04-01 |
description |
Abstract Development of high-energy-density anode is crucial for practical application of Na-ion battery as a post Li-ion battery. Hard carbon (HC), though a promising anode candidate, still has bottlenecks of insufficient capacity and unclear microscopic picture. Usage of the micropore has been recently discussed, however, the underlying sodiation mechanism is still controversial. Herein we examined the origin for the high-capacity sodiation of HC, based on density functional theory calculations. We demonstrated that nanometer-size Na cluster with 3–6 layers is energetically stable between two sheets of graphene, a model micropore, in addition to the adsorption and intercalation mechanisms. The finding well explains the extended capacity over typical 300 mAhg−1, up to 478 mAhg−1 recently found in the MgO-templated HC. We also clarified that the MgO-template can produce suitable nanometer-size micropores with slightly defective graphitic domains in HC. The present study considerably promotes the atomistic theory of sodiation mechanism and complicated HC science. |
url |
https://doi.org/10.1038/s41524-021-00515-7 |
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