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1.
RSC Adv ; 8(43): 24261-24267, 2018 Jul 02.
Article in English | MEDLINE | ID: mdl-35539178

ABSTRACT

Realization of the lithium-sulfur battery system is of major concern because a theoretical cell capacity of 1675 mA h g-1 can be obtained at an average voltage of 2.1 V. The primary issues that hinder the practical applications of this system include its poor utilization of sulfur, limited cycle life and retarded rate performance. In the present study, hemp-derived carbon (C-hemp) is made into a composite with room temperature-synthesized MnO2, which acts as a host for sulfur in the lithium-sulfur battery system. The composite material is characterized physico-chemically and electrochemically using various techniques. This composite exhibits better electrochemical performance as a sulfur carrier compared to pristine carbon. An initial specific capacity of 926 mA h g-1 is obtained at 0.1 C for C-hemp/MnO2-sulfur, which surpasses that of the C-hemp-sulfur sample. C-hemp provides a conductive matrix as well as porous sites for the accommodation of sulfur, while MnO2 exhibits the ability to absorb polysulfide chemically. Thus, this composite is established as a potential cathode for lithium-sulfur batteries.

2.
Chemphyschem ; 15(12): 2445-9, 2014 Aug 25.
Article in English | MEDLINE | ID: mdl-24888436

ABSTRACT

A porous interwoven network is synthesized, consisting of ultralong MnO2 nanowires and multi-walled carbon nanotubes (MWCNTs). Serving as the anode for a lithium-ion battery, this nanocomposite demonstrates excellent performance due to the synergistic integration of these two 1D materials. Taking advantage of the excellent flexibility and strength of this MnO2-MWCNT network, a full, bendable battery is made that offers high capacity, cycling stability, and low cost.


Subject(s)
Ions/chemistry , Lithium/chemistry , Manganese Compounds/chemistry , Nanotubes, Carbon/chemistry , Nanowires/chemistry , Oxides/chemistry , Electric Power Supplies , Electrodes
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