Hostname: page-component-586b7cd67f-rdxmf Total loading time: 0 Render date: 2024-11-24T11:42:36.289Z Has data issue: false hasContentIssue false

Zn2SnO4 coated reduced graphene oxide nanoribbons with enhanced electrochemical performance for lithium-ion batteries

Published online by Cambridge University Press:  22 November 2016

Mingjun Jing
Affiliation:
College of Chemistry and Chemical Engineering, Hunan Institute of Science and Technology, Yueyang 414006, China
Zhaohui Hou*
Affiliation:
College of Chemistry and Chemical Engineering, Hunan Institute of Science and Technology, Yueyang 414006, China
Hang Yang
Affiliation:
College of Chemistry and Chemical Engineering, Hunan Institute of Science and Technology, Yueyang 414006, China
Gangyong Li
Affiliation:
College of Chemistry and Chemical Engineering, Hunan Institute of Science and Technology, Yueyang 414006, China
Minjie Zhou
Affiliation:
College of Chemistry and Chemical Engineering, Hunan Institute of Science and Technology, Yueyang 414006, China
Wenyuan Xu
Affiliation:
College of Chemistry and Chemical Engineering, Hunan Institute of Science and Technology, Yueyang 414006, China
*
a)Address all correspondence to this author. e-mail: [email protected]
Get access

Abstract

Graphene nanoribbons as a quasi-one-dimensional form of graphene has attracted intensive attention in energy related devices. Upon oxidation and cutting of multiwall carbon nanotubes (MWCNTs), highly dispersive graphene oxide nanoribbons (GONRs) were obtained, on which Zn2+ and Sn4+ can be homogenously deposited. The reduced graphene oxide nanoribbons (rGONRs)/Zn2SnO4 composite with a homogeneous distribution of nanoparticles on the nanoribbons have been prepared through facile in situ chemical co-reduction process. It is worth noting that the size of Zn2SnO4 particles tightly dispersed on rGONRs is about 15 nm. Benefit from the introduction of rGONRs, the specific surface area and electrode conductivity of rGONRs/Zn2SnO4 can both be effectively enhanced. The as-prepared rGONRs/Zn2SnO4 as anode material for lithium-ion batteries displays desirable electrochemical performance (727.2 mA h/g after 50 cycles at the current density of 100 mA/g), which is mainly attributed to the uniformly distributed Zn2SnO4 nanoparticles and the immobilizing and conducting effects of rGONRs.

Type
Articles
Copyright
Copyright © Materials Research Society 2016 

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

Peng, Q., Li, Y., He, X., Gui, X., Shang, Y., Wang, C., Wang, C., Zhao, W., Du, S., Shi, E., Li, P., Wu, D., and Cao, A.: Graphene nanoribbon aerogels unzipped from carbon nanotube sponges. Adv. Mater. 26(20), 3241 (2014).CrossRefGoogle ScholarPubMed
Li, X., Wang, X., Zhang, L., Lee, S., and Dai, H.: Chemically derived, ultrasmooth graphene nanoribbon semiconductors. Science 319(5867), 1229 (2008).Google Scholar
Jiao, L., Zhang, L., Wang, X., Diankov, G., and Dai, H.: Narrow graphene nanoribbons from carbon nanotubes. Nature 458(7240), 877 (2009).Google Scholar
Lin, J., Peng, Z., Xiang, C., Ruan, G., Yan, Z., Natelson, D., and Tour, J.M.: Graphene nanoribbon and nanostructured SnO2 composite anodes for lithium ion batteries. ACS Nano 7(7), 6001 (2013).Google Scholar
Hod, O., Barone, V., Peralta, J.E., and Scuseria, G.E.: Enhanced half-metallicity in edge-oxidized zigzag graphene nanoribbons. Nano Lett. 7(8), 2295 (2007).CrossRefGoogle ScholarPubMed
Luo, B., Liu, S., and Zhi, L.: Chemical approaches toward graphene-based nanomaterials and their applications in energy-related areas. Small 8(5), 630 (2012).Google Scholar
Genorio, B., Lu, W., Dimiev, A.M., Zhu, Y., Raji, A-R.O., Novosel, B., Alemany, L.B., and Tour, J.M.: In situ intercalation replacement and selective functionalization of graphene nanoribbon stacks. ACS Nano 6(5), 4231 (2012).Google Scholar
Lin, J., Raji, A-R.O., Nan, K., Peng, Z., Yan, Z., Samuel, E.L.G., Natelson, D., and Tour, J.M.: Iron oxide nanoparticle and graphene nanoribbon composite as an anode material for high-performance Li-ion batteries. Adv. Funct. Mater. 24(14), 2044 (2014).Google Scholar
Yang, Y., Li, L., Fei, H., Peng, Z., Ruan, G., and Tour, J.M.: Graphene nanoribbon/V2O5 cathodes in lithium-ion batteries. ACS Appl. Mater. Interfaces 6(12), 9590 (2014).Google Scholar
Kosynkin, D.V., Higginbotham, A.L., Sinitskii, A., Lomeda, J.R., Dimiev, A., Price, B.K., and Tour, J.M.: Longitudinal unzipping of carbon nanotubes to form graphene nanoribbons. Nature 458(7240), 872 (2009).CrossRefGoogle ScholarPubMed
Higginbotham, A.L., Kosynkin, D.V., Sinitskii, A., Sun, Z., and Tour, J.M.: Lower-defect graphene oxide nanoribbons from multiwalled carbon nanotubes. ACS Nano 4(4), 2059 (2010).Google Scholar
Bhardwaj, T., Antic, A., Pavan, B., Barone, V., and Fahlman, B.D.: Enhanced electrochemical lithium storage by graphene nanoribbons. J. Am. Chem. Soc. 132(36), 12556 (2010).Google Scholar
Qu, Q., Yang, S., and Feng, X.: 2D sandwich-like sheets of iron oxide grown on graphene as high energy anode material for supercapacitors. Adv. Mater. 23(46), 5574 (2011).Google Scholar
Hummers, W.S. and Offeman, R.E.: Preparation of graphitic oxide. J. Am. Chem. Soc. 80(6), 1339 (1958).Google Scholar
Chen, S., Zhu, J., Wu, X., Han, Q., and Wang, X.: Graphene oxide−MnO2 nanocomposites for supercapacitors. ACS Nano 4(5), 2822 (2010).CrossRefGoogle ScholarPubMed
Wang, H., Casalongue, H.S., Liang, Y., and Dai, H.: Ni(OH)2 nanoplates grown on graphene as advanced electrochemical pseudocapacitor materials. J. Am. Chem. Soc. 132(21), 7472 (2010).Google Scholar
Zhu, X.J., Geng, L.M., Zhang, F.Q., Liu, Y.X., and Cheng, L.B.: Synthesis and performance of Zn2SnO4 as anode materials for lithium ion batteries by hydrothermal method. J. Power Sources 189(1), 828 (2009).Google Scholar
Kim, K., Annamalai, A., Park, S.H., Kwon, T.H., Pyeon, M.W., and Lee, M-J.: Preparation and electrochemical properties of surface-charge-modified Zn2SnO4 nanoparticles as anodes for lithium-ion batteries. Electrochim. Acta 76, 192 (2012).Google Scholar
Rong, A., Gao, X.P., Li, G.R., Yan, T.Y., Zhu, H.Y., Qu, J.Q., and Song, D.Y.: Hydrothermal synthesis of Zn2SnO4 as anode materials for Li-ion battery. J. Phys. Chem. B 110(30), 14754 (2006).Google Scholar
Zhao, Y., Huang, Y., Zhang, W., Wang, Q., Wang, K., Zong, M., and Sun, X.: Botryoidalis hollow Zn2SnO4 boxes@graphene as anode materials for advanced lithium-ion batteries. RSC Adv. 3(45), 23489 (2013).Google Scholar
Song, W., Xie, J., Hu, W., Liu, S., Cao, G., Zhu, T., and Zhao, X.: Facile synthesis of layered Zn2SnO4/graphene nanohybrid by a one-pot route and its application as high-performance anode for Li-ion batteries. J. Power Sources 229, 6 (2013).CrossRefGoogle Scholar
Yuan, W.S., Tian, Y.W., and Liu, G.Q.: Synthesis and electrochemical properties of pure phase Zn2SnO4 and composite Zn2SnO4/C. J. Alloys Compd. 506(2), 683 (2010).CrossRefGoogle Scholar
Lim, Y.R., Jung, C.S., Im, H.S., Park, K., Park, J., Cho, W.I., and Cha, E.H.: Zn2GeO4 and Zn2SnO4 nanowires for high-capacity lithium- and sodium-ion batteries. J. Mater. Chem. A 4(27), 10691 (2016).Google Scholar
Wang, K., Huang, Y., Shen, Y., Xue, L., Huang, H., Wu, H., and Wang, Y.: Graphene supported Zn2SnO4 nanoflowers with superior electrochemical performance as lithium-ion battery anode. Ceram. Int. 40(9), 15183 (2014).CrossRefGoogle Scholar
Fan, H., Liu, Z., Yang, J., Wei, C., Zhang, J., Wu, L., and Zheng, W.: Surfactant-free synthesis of Zn2SnO4 octahedron decorated with nanoplates and its application in rechargeable lithium ion batteries. RSC Adv. 4(91), 49806 (2014).Google Scholar
Hong, Y.J. and Kang, Y.C.: Formation of core–shell-structured Zn2SnO4-carbon microspheres with superior electrochemical properties by one-pot spray pyrolysis. Nanoscale 7(2), 701 (2015).Google Scholar
Wang, H.Y., Wang, B.Y., Meng, J.K., Wang, J.G., and Jiang, Q.C.: One-step synthesis of Co-doped Zn2SnO4–graphene–carbon nanocomposites with improved lithium storage performances. J. Mater. Chem. A 3(3), 1023 (2015).CrossRefGoogle Scholar
Zhao, Y., Huang, Y., Sun, X., Huang, H., Wang, K., Zong, M., and Wang, Q.: Hollow Zn2SnO4 boxes wrapped with flexible graphene as anode materials for lithium batteries. Electrochim. Acta 120, 128 (2014).CrossRefGoogle Scholar
Yan, C., Yang, J., Xie, Q., Lu, Z., Liu, B., Xie, C., Wu, S., Zhang, Y., and Guan, Y.: Novel nanoarchitectured Zn2SnO4 anchored on porous carbon as high performance anodes for lithium ion batteries. Mater. Lett. 138, 120 (2015).CrossRefGoogle Scholar
Wang, H., Wang, Y., Hu, Z., and Wang, X.: Cutting and unzipping multiwalled carbon nanotubes into curved graphene nanosheets and their enhanced supercapacitor performance. ACS Appl. Mater. Interfaces 4(12), 6827 (2012).Google Scholar
Huang, H., Huang, Y., Wang, M., Chen, X., Zhao, Y., Wang, K., and Wu, H.: Preparation of hollow Zn2SnO4 boxes@C/graphene ternary composites with a triple buffering structure and their electrochemical performance for lithium-ion batteries. Electrochim. Acta 147, 201 (2014).CrossRefGoogle Scholar
Yoo, E., Kim, J., Hosono, E., Zhou, H.S., Kudo, T., and Honma, I.: Large reversible Li storage of graphene nanosheet families for use in rechargeable lithium ion batteries. Nano Lett. 8(8), 2277 (2008).Google Scholar
Stankovich, S., Dikin, D.A., Piner, R.D., Kohlhaas, K.A., Kleinhammes, A., Jia, Y., Wu, Y., Nguyen, S.T., and Ruoff, R.S.: Synthesis of graphene-based nanosheets via chemical reduction of exfoliated graphite oxide. Carbon 45(7), 1558 (2007).Google Scholar
Zhong, C., Wang, J., Chen, Z., and Liu, H.: SnO2–graphene composite synthesized via an ultrafast and environmentally friendly microwave autoclave method and its use as a superior anode for lithium-ion batteries. J. Phys. Chem. C 115(50), 25115 (2011).Google Scholar
Wang, C., Li, H., Zhao, J., Zhu, Y., Yuan, W.Z., and Zhang, Y.: Graphene nanoribbons as a novel support material for high performance fuel cell electrocatalysts. Int. J. Hydrogen Energy 38(30), 13230 (2013).Google Scholar
Han, F., Li, W.C., Li, M.R., and Lu, A.H.: Fabrication of superior-performance SnO2@C composites for lithium-ion anodes using tubular mesoporous carbon with thin carbon walls and high pore volume. J. Mater. Chem. 22(19), 9645 (2012).Google Scholar
Wang, B.Y., Wang, H.Y., Ma, Y.L., Zhao, X.H., Qi, W., and Jiang, Q.C.: Facile synthesis of fine Zn2SnO4 nanoparticles/graphene composites with superior lithium storage performance. J. Power Sources 281, 341 (2015).CrossRefGoogle Scholar
Wang, K., Huang, Y., Han, T., Zhao, Y., Huang, H., and Xue, L.: Facile synthesis and performance of polypyrrole-coated hollow Zn2SnO4 boxes as anode materials for lithium-ion batteries. Ceram. Int. 40(1), 2359 (2014).Google Scholar
Zhao, Y., Huang, Y., Wang, Q., Wang, K., Zong, M., Wang, L., Zhang, W., and Sun, X.: Preparation of hollow Zn2SnO4 boxes for advanced lithium-ion batteries. RSC Adv. 3(34), 14480 (2013).Google Scholar
Yuvaraj, S., Lee, W.J., Lee, C.W., and Selvan, R.K.: In situ and ex situ carbon coated Zn2SnO4 nanoparticles as promising negative electrodes for Li-ion batteries. RSC Adv. 5(82), 67210 (2015).CrossRefGoogle Scholar
Song, W., Xie, J., Liu, S., Cao, G., Zhu, T., and Zhao, X.: Graphene-induced confined crystal growth of octahedral Zn2SnO4 and its improved Li-storage properties. J. Mater. Res. 27(24), 3096 (2012).Google Scholar
Ji, X., Huang, X., Zhao, Q., Wang, A., and Liu, X.: Facile synthesis of carbon-coated Zn2SnO4 nanomaterials as anode materials for lithium-ion batteries. J. Mater. Res. 2014, 1 (2014).Google Scholar
Rai, A.K., Gim, J., Anh, L.T., and Kim, J.: Partially reduced Co3O4/graphene nanocomposite as an anode material for secondary lithium ion battery. Electrochim. Acta 100, 63 (2013).Google Scholar
Jiang, T., Tian, X., Gu, H., Zhu, H., and Zhou, Y.: Zn2SnO4@C core–shell nanorods with enhanced anodic performance for lithium-ion batteries. J. Alloys Compd. 639, 239 (2015).Google Scholar