Low Li+ Insertion Barrier Carbon for High Energy Efficient Lithium-Ion Capacitor

ACS Appl Mater Interfaces. 2018 Jan 17;10(2):1690-1700. doi: 10.1021/acsami.7b15473. Epub 2018 Jan 4.

Abstract

Lithium-ion capacitor (LIC) is an attractive energy-storage device (ESD) that promises high energy density at moderate power density. However, the key challenge in its design is the low energy efficient negative electrode, which barred the realization of such research system in fulfilling the current ESD technological inadequacy due to its poor overall energy efficiency. Large voltage hysteresis is the main issue behind high energy density alloying/conversion-type materials, which reduces the electrode energy efficiency. Insertion-type material though averted in most research due to the low capacity remains to be highly favorable in commercial application due to its lower voltage hysteresis. To further reduce voltage hysteresis and increase capacity, amorphous carbon with wider interlayer spacing has been demonstrated in the simulation result to significantly reduce Li+ insertion barrier. Hence, by employing such amorphous carbon, together with disordered carbon positive electrode, a high energy efficient LIC with round-trip energy efficiency of 84.3% with a maximum energy density of 133 Wh kg-1 at low power density of 210 W kg-1 can be achieved.

Keywords: amorphous carbon; disordered carbon; energy efficiency; practicality; voltage efficiency.