Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
6602030 | Electrochimica Acta | 2018 | 30 Pages |
Abstract
The effort to increase the energy density of conventional electric double-layer capacitors (EDLCs) goes through the development of lithium-ion capacitors (LICs). Herein, we report a self-standing, binder-free composite as the battery-type negative electrode obtained by a low-cost and easily scalable method. Tin(IV) oxide nanoparticles (<10â¯nm) embedded in a reduced graphene oxide matrix (SnO2-rGO) were prepared by an in-situ synthetic approach that involves the freeze/freeze-drying of a graphene oxide suspension in the presence of a tin precursor and its subsequent thermal reduction under argon atmosphere. Physicochemical and electrochemical characterization confirmed the optimum nano-structuration of the composite showing ultrafast response at high current densities. Its coupling with a highly porous olive pits waste-derived activated carbon (AC) as the capacitor-type positive electrode, enables the fabrication of a LIC with an excellent energy density output. The newly designed LIC is able to deliver 60â¯Wh kgâ1 at 2.9â¯kW kgâ1 (tdischargeâ¯ââ¯1â¯min) and still 27â¯Wh kgâ1 at 10.6â¯kW kgâ1 (tdischargeâ¯ââ¯10â¯s).
Related Topics
Physical Sciences and Engineering
Chemical Engineering
Chemical Engineering (General)
Authors
MarÃa Arnaiz, Cristina Botas, Daniel Carriazo, Roman Mysyk, Federico Mijangos, Teofilo Rojo, Jon Ajuria, Eider Goikolea,