Metal selenides have caused widespread concern due to their high theoretical capacities and appropriate working potential; however, they suffer from large volume variation during cycling and low electrical conductivity, which limit their practical applications. In this article, a three-dimensional (3D) porous carbon framework embedded with homogeneous FeSe nanoparticles (3D porous FeSe/C composite) was synthesized by a facile calcined approach, following a selenized method without a template. As the uniformity of FeSe nanoparticles and 3D porous structure are beneficial to accommodate volume stress upon cycling and shorten electrons/ions transport path, associated with carbon as a buffer matrix for increasing conductivity, the 3D porous FeSe/C composite displays excellent electrochemical properties with high reversible capacities of 798.4 and 455.0 mA h g for lithium-ion batteries and sodium-ion batteries, respectively, when the current density is 100 mA g after 100 cycles. In addition, the as-prepared composite exhibits good cycling stability as compared to bare FeSe nanoparticles. Therefore, the facile synthetic strategy in the current work provides a new perspective in constructing a high-performance anode.
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http://dx.doi.org/10.1021/acsami.8b11479 | DOI Listing |
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