Abstract
Manganese selenide (MnSe), a conversion-type anode for Lithium-ion batteries with low cost and high specific capacity, is impeded the development by drastic volume changes and poor kinetics in Li+ insertion/desertion processes. In this study, we successfully synthesized uniform MnSe nanoparticles anchored in 3D carbon nanosheet matrix (MnSe ⊂ 3DCNM) via a facile sol–gel and selenation route. The obtained 3DCNM contributes high surface area, increased active sites for N-doping, excellent electric conductivity and stable nanostructure to MnSe ⊂ 3DCNM, thereby leading to full lithiation/delithiation reactions, excellent electrochemical kinetics and buffer volume expansion of MnSe nanoparticles. Among these MnSe ⊂ 3DCNM materials, MnSe ⊂ 3DCNM-1.92 exhibits superior cycle stability with a stable reversible capacity of 665.5 mA h g−1 after 200 cycles and excellent rate capabilities in half cells. When combined with LiMn2O4 cathode, the MnSe ⊂ 3DCNM-1.92//LiMn2O4 full cells also exhibit excellent electrochemical properties. The kinetic analysis and EIS results demonstrate the generation of intermediate LixMnSe phase and the irreversible phase transformation of α-MnSe → β-MnSe with decreased diffusion energy barriers mainly facilitate MnSe ⊂ 3DCNM-1.92 to exhibit high specific capacity, superior Li+ and electron transport kinetics. This facile strategy provides a guideline for the other transition metal selenides with high surface areas and stable nanostructures apply in storage systems, electrocatalysis, and semiconductors.
Published Version
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