Porous Carbon Materials for Electrochemical Energy Storage

Authors

  • Gengan Saravanan KL University, Department of chemistry, Aziz Nagar, Hyderabad, Telangana

Abstract

The climate change and energy demand promote the rapid development of electrochemical energy-storage devices. Due to an excellent chemical stability, high electronic conductivity and large specific surface area, porous carbon materials have always been considering as a promising candidate for electrochemical energy storage. This focus review summaries recent advances in the synthesis of various porous carbon materials electrochemical energy storage devices like lithium-ion batteries, supercapacitors, lithium-ion hybrid capacitors have been discussed in this review. Keywords: electrochemical energy, porous carbon, lithium-ion batteries, supercapacitors, lithium-ion hybrid capacitors

References

P. Simon, Y. Gogotsi, Nat. Mater. 2008, 7, 845-854

M. Winter, R. J. Brodd, Chem. Rev. 2004, 104, 4245-4269

Z. B. Lei, J. T. Zhang, L. L. Zhang, N. A. Kumar, X. S. Zhao, Energy Environ. Sci. 2016, 9, 1891-1930

B. Hu, K. Wang, L. H. Wu, S. H. Yu, M. Antonietti, M. M. Titirici, Adv. Mater. 2010, 22, 813-828

H.-K. Kim, A. R. Kamali, K. C. Roh, K.-B. Kim, D. J. Fray, Energy Environ.Sci. 2016, 9, 2249-2256.

B. C. Kim, J.-Y. Hong, G. G. Wallace, H. S. Park, Adv. Energy Mater.2015, 5, 1500959

J. Zhu, Y. Shan, T. Wang, H. T. Sun, Z. P. Zhao, L. Mei, Z. Fan, Z. Xu, I.Shakir, Y. Huang, B. G. Lu, X. F. Duan, Nat. Commun. 2016, 7, 13432.

K. Yang, Q. M. Gao, Y. L. Tan, W. Q. Tian, W. W. Qian, L. H. Zhu, C. X.Yang, Chem. Eur. J. 2016, 22, 3239-3244.

J. W. Zhang, Y. R. Cai, Q. W. Zhong, D. Z. Lai, J. M. Yao, Nanoscale2015, 7, 17791-17797.

M. Pohl, H. Kurig, I. Tallo, A. Jänes, E. Lust, Chem. Eng. J. 2017, 320,576-587.

L. Borchardt, Q.-L. Zhu, M. E. Casco, R. Berger, X. D. Zhuang, S. Kaskel,X. L. Feng, Q. Xu, Mater. Today 2017, 20, 592-610.

Z. K. Kou, B. B. Guo, Y. F. Zhao, S. F. Huang, T. Meng, J. Zhang, W. Q.Li, I. S. Amiinu, Z. H. Pu, M. Wang, M. Jiang, X. B. Liu, Y. F. Tang, S. C.Mu, ACS Appl. Mater. Interfaces 2017, 9, 3702-3712

L. Qie, W. M. Chen, H. H. Xu, X. Q. Xiong, Y. Jiang, F. Zou, X. L. Hu, Y.Xin, Z. L. Zhang, Y. H. Huang, Energy Environ. Sci. 2013, 6, 2497-2504

Y. M. Sun, R. B. Sills, X. L. Hu, Z. W. Seh, X. Xiao, H. H. Xu, W. Lou, H.Y. Jin, Y. Xin, T. Q. Li, Z. L. Zhang, J. Zhou, W. Cai, Y. H. Huang, Y. Cui,Nano Lett. 2015, 15, 3899-3906.

W. H. Li, M. S. Li, M. Wang, L. C. Zeng, Y. Yu, Nano Energy 2015, 13,693-701

V. Aravindan, J. Gnanaraj, Y. S. Lee, S. Madhavi, Chem. Rev. 2014, 114,11619-11635

H. W. Wang, C. R. Zhu, D. L. Chao, Q. Y. Yan, H. J. Fan, Adv. Mater.2017, 29. 1702093.

B. Li, Z. J. Xiao, M. Chen, Z. Y. Huang, X. Y. Tie, J. T. Zai, X. F. Qian, J.

Mater. Chem. A 2017, 5, 24502-24507.

Published

2019-03-31

Issue

Section

Articles