Author:
Ghiyasiyan-Arani Maryam,Salavati-Niasari Masoud
Abstract
AbstractHalloysite nanotubes (HNTs) with high active sites are used as natural layered mineral supports. Sulfur- and nitrogen-co doped graphene quantum dots (S, N-GQDs) as conductive additive and CoFe2O4 as the electrocatalyst was decorated on a HNT support to design an effective and environmentally friendly active material. Herein, an eco-friendly CoFe2O4/S, N-GQDs/HNTs nanocomposite is fabricated via a green hydrothermal method to equip developed hydrogen storage sites and to allow for quick charge transportation for hydrogen storage utilization. The hydrogen storage capacity of pure HNTs was 300 mAhg−1 at a current density of 1 mA after 20 cycles, while that of S, N-GQD-coated HNTs (S, N-GQDs/HNTs) was 466 mAhg−1 under identical conditions. It was also conceivable to increase the hydrogen sorption ability through the spillover procedure by interlinking CoFe2O4 in the halloysite nanoclay. The hydrogen storage capacity of the CoFe2O4/HNTs was 450 mAhg−1, while that of the representative designed nanocomposites of CoFe2O4/S, N-GQDs/HNTs was 600 mAhg−1. The halloysite nano clay and treated halloysite show potential as electrode materials for electrochemical energy storage in alkaline media; in particular, ternary CoFe2O4/S, N-GQD/HNT nanocomposites prove developed hydrogen sorption performance in terms of presence of conductive additive, physisorption, and spillover mechanisms.
Funder
Iran National Science Foundation
Publisher
Springer Science and Business Media LLC
Reference55 articles.
1. Ummartyotin, S., Bunnak, N. & Manuspiya, H. A comprehensive review on modified clay based composite for energy based materials. Renew. Sustain. Energy Rev. 61, 466–472 (2016).
2. Chen, C., Ma, Y. & Wang, C. Investigation of electrochemical performance of montmorillonite clay as Li-ion battery electrode. Sustain. Mater. Technol. 19, e00086 (2019).
3. Voronin, D., Ivanov, E., Gushchin, P., Fakhrullin, R. & Vinokurov, V. Clay composites for thermal energy storage: A review. Molecules 25, 1504 (2020).
4. Lan, Y. et al. Natural clay-based materials for energy storage and conversion applications. Adv. Sci. 1, 2004036 (2021).
5. Yendluri, R., Otto, D. P., De Villiers, M. M., Vinokurov, V. & Lvov, Y. M. Application of halloysite clay nanotubes as a pharmaceutical excipient. Int. J. Pharm. 521, 267–273 (2017).
Cited by
29 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献