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Effectively enhanced structural stability and electrochemical properties of LiNiMnO cathode materials poly-(3,4-ethylenedioxythiophene)- coated for high voltage Li-ion batteries. | LitMetric

Spinel LiNiMnO shows promise as a potential candidate for Li-ion batteries due to its high energy density and high rate performance. However, LiNiMnO (LNMO) spinel oxides usually deliver poor cycle life because of the increasing impedance and gradually dissolving Mn resulting in the destruction of crystal structure. Here, a conductive polymer poly-(3,4-ethylenedioxythiophene) (PEDOT) surface modified strategy is introduced to settle the above challenges. The main purpose is to construct a uniform and dense shell film on the surface of LiNiMnO (Industrial Grade), which is prepared by a simple chemical oxidative polymerization method. The Mn dissolving from the lattice during the long-term cycling is well inhibited as the polymer shell protects LiNiMnO from direct exposure to the highly active electrolyte. As expected, the 3 wt% poly-(3,4-ethylenedioxythiophene) coated sample reveals long cycle life with acceptable capacity of 114.5 mA h g and high capacity retention of 91.6% after 200 cycles, compared to 70.9 mA h g and 56.5%, respectively, for the bare LiNiMnO sample. Furthermore, the coated sample demonstrates a higher capacity of 110 mA h g and 63 mA h g at 5C and 10C rate respectively. The improved performance is believed to be attributed to the formation of high conductivity and stable interface structure between electrolyte and LNMO, which is beneficial to suppress the destruction of crystalline structure due to the Mn dissolution and undesired side-reaction between electrolyte and LiNiMnO in long cycle, and improve simultaneously the conductivity and interface stability of LiNiMnO for high voltage lithium-ion batteries.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059992PMC
http://dx.doi.org/10.1039/c8ra09550gDOI Listing

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