Graphitic carbon nitride-derived high lithium storage capacity graphite material with regular layer structure and the structural evolution mechanism
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
Author(s)
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Detail(s)
Original language | English |
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Article number | 139985 |
Journal / Publication | Electrochimica Acta |
Volume | 409 |
Online published | 28 Jan 2022 |
Publication status | Published - 20 Mar 2022 |
Link(s)
Abstract
A novel graphite anode (Ni-g-C3N4) is synthesized by using graphitic carbon nitride as the precursor and nickel (Ni) as the catalyst, which dramatically decreases the reaction temperature to 850 °C. The critical role of Ni in denitrifying g-C3N4 to produce high-quality graphite is identified, with the results showing that the nitrogen content decreases from 62.1% to 1.2% and thus leading to greatly enhanced electrical conductivity as well as excellent rate capability, cycle performance and structure integrity. The Ni-g-C3N4 exhibits typical low voltage plateau characteristic of graphite anode and the transformation of graphite intercalation compounds are investigated in the in-situ XRD analysis during the discharge/charge process. The capacity retention is as high as 99.3% after 600 cycles at 0.5 A⋅g−1, demonstrating excellent structural stability. Moreover, the evolution from g-C3N4 to graphite Ni-g-C3N4 is investigated via TG-MS and high-temperature in-situ XRD, which clearly reveals that the catalytic graphitization processes mainly consist of the dissolution, re-precipitation and carbide conversion, along with the formation of intermediate Ni3C and the release of nitrogen gas. In general, this work not only proposes a novel method to synthesize high performance graphite anode from g-C3N4 for lithium ion batteries, but also unravels the catalytic graphitization mechanism.
Research Area(s)
- Catalytic graphitization, Denitrification, Graphite anode, Graphitic carbon nitride, Lithium-ion batteries
Citation Format(s)
Graphitic carbon nitride-derived high lithium storage capacity graphite material with regular layer structure and the structural evolution mechanism. / Yuan, Zhipeng; Hu, Zhuang; Gao, Peng et al.
In: Electrochimica Acta, Vol. 409, 139985, 20.03.2022.
In: Electrochimica Acta, Vol. 409, 139985, 20.03.2022.
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review