Hamid, Faiq Haidar and Karunawan, Jotti and Irmawati, Yuyun and Laksono, Basuki Tri and Peiner, Erwin and Wasisto, Hutomo Suryo and Iskandar, Ferry and Sumboja, Afriyanti (2023) Cationic surfactant assisted electrostatic self-assembly of nitrogen-rich carbon enwrapped silicon anode: Unlocking high lithium storage performance. Electrochimica Acta, 471. p. 143384. ISSN 00134686
Full text not available from this repository. (Request a copy)Abstract
Nitrogen-rich carbon (N-rich-C) coating is attractive to enhance capacity, reduce resistance, and alleviate volume expansion of silicon anode in Li-ion batteries. However, the non-uniform coating of N-rich-C on silicon might restrict its optimum performance. In this study, poly(diallyldimethylammonium chloride) (PDDA) is employed as a cationic surfactant to tailor the surface potential of bare ball-milled Si particles, enabling the electrostatic self-assembly between Si particles and graphitic carbon nitride as the N-rich-C precursor. Continuous N-rich-C enwrapped ball-milled silicon (Si@N-rich-C) has been obtained after pyrolysis with a high N to C ratio of 0.65 and abundant pyridinic-N and pyrrolic-N, facilitating fast kinetic transport and accommodating more Li+ ion storage. Combined with the high capacity of Si, Li-ion cell with Si@N-rich-C electrode exhibits a high capacity of 1732 mAh g−1 after 200 cycles of charge-discharge at 400 mA g−1. At high-rate testing, Si@N-rich-C also maintains a high capacity of 1673 mAh g−1 at 1000 mA g−1. This study provides an effective approach for synthesizing high-capacity silicon anode for Li-ion batteries.
| Item Type: | Article |
|---|---|
| Uncontrolled Keywords: | Carbon coating; Composite; g-C3N4; Lithium-ion batteries; Nitrogen-rich carbon |
| Subjects: | Energy > Batteries & Components |
| Depositing User: | Maria Regina Karunia |
| Date Deposited: | 06 Oct 2026 04:19 |
| Last Modified: | 06 Oct 2026 04:19 |
| URI: | https://karya.brin.go.id/id/eprint/60723 |


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