Crumpled nitrogen- and boron-dual-self-doped graphene sheets as an extraordinary active anode material for lithium ion batteries
A novel three-dimensional, interconnected conducting layer network, comprised of crumpled nitrogen- and boron-dual-self-doped graphene sheets (NBGs) with an ultrahigh content of 7.72 at% nitrogen and 7.18 at% boron, has been synthesized through one-step thermolysis, using a borane- tert -butylamine...
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Veröffentlicht in: | Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2016-01, Vol.4 (37), p.14155-14162 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | A novel three-dimensional, interconnected conducting layer network, comprised of crumpled nitrogen- and boron-dual-self-doped graphene sheets (NBGs) with an ultrahigh content of 7.72 at% nitrogen and 7.18 at% boron, has been synthesized through one-step thermolysis, using a borane-
tert
-butylamine complex as a precursor. The unique self-assembled 3D network structure offers shortened tunnels for lithium ion and electron transport and conduces the adsorption/desorption of lithium ions. As an anode material, NBGs-1000 reveals a high reversible capacity of up to 909 mA h g
−1
and an excellent discharge capacity of 877 mA h g
−1
after 125 cycles. It also exhibits a remarkable rate performance, including large capacities of 429 mA h g
−1
and 318 mA h g
−1
at 1 A g
−1
and 2 A g
−1
, respectively. In contrast, a commercial graphite electrode has a capacity of less than 50 mA h g
−1
at 1 A g
−1
. This demonstrates that crumpled NBGs are an extraordinary active anode material exhibiting a high capacity and good stability for lithium ion batteries, owing to their large surface area, heteroatomic defects, and the unique crumpled structure.
A self-assembled 3D network comprised of curled and wrinkled NBGs offers reduced tunnels for rapid lithium ion transport. |
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ISSN: | 2050-7488 2050-7496 |
DOI: | 10.1039/c6ta05623g |