TY - JOUR
T1 - Eco-Efficient Synthesis of Highly Porous CoCO3 Anodes from Supercritical CO2 for Li+ and Na+ Storage
AU - Li, Hui Ying
AU - Tseng, Chuan Ming
AU - Yang, Cheng Hsien
AU - Lee, Tai Chou
AU - Su, Ching Yuan
AU - Hsieh, Chien Te
AU - Chang, Jeng-Kuei
PY - 2017/1/1
Y1 - 2017/1/1
N2 - An eco-efficient synthetic route for the preparation of high-performance carbonate anodes for Li+ and Na+ batteries is developed. With supercritical CO2 (scCO2) as the precursor, which has gas-like diffusivity, extremely low viscosity, and near-zero surface tension, CoCO3 particles are uniformly formed and tightly connected on graphene nanosheets (GNSs). This synthesis can be conducted at 50 °C, which is considerably lower than the temperature required for conventional preparation methods, minimizing energy consumption. The obtained CoCO3 particles (ca. 20 nm in diameter), which have a unique interpenetrating porous structure, can increase the number of electroactive sites, promote electrolyte accessibility, shorten ion diffusion length, and readily accommodate the strain generated upon charging/discharging. With a reversible capacity of 1105 mAh g−1, the proposed CoCO3/GNS anode shows an excellent rate capability, as it can deliver 745 mAh g−1 in 7.5 min. More than 98 % of the initial capacity is retained after 200 cycles. These properties are clearly superior to those of previously reported CoCO3-based electrodes for Li+ storage, indicating the merit of our scCO2-based synthesis, which is facile, green, and can be easily scaled up for mass production.
AB - An eco-efficient synthetic route for the preparation of high-performance carbonate anodes for Li+ and Na+ batteries is developed. With supercritical CO2 (scCO2) as the precursor, which has gas-like diffusivity, extremely low viscosity, and near-zero surface tension, CoCO3 particles are uniformly formed and tightly connected on graphene nanosheets (GNSs). This synthesis can be conducted at 50 °C, which is considerably lower than the temperature required for conventional preparation methods, minimizing energy consumption. The obtained CoCO3 particles (ca. 20 nm in diameter), which have a unique interpenetrating porous structure, can increase the number of electroactive sites, promote electrolyte accessibility, shorten ion diffusion length, and readily accommodate the strain generated upon charging/discharging. With a reversible capacity of 1105 mAh g−1, the proposed CoCO3/GNS anode shows an excellent rate capability, as it can deliver 745 mAh g−1 in 7.5 min. More than 98 % of the initial capacity is retained after 200 cycles. These properties are clearly superior to those of previously reported CoCO3-based electrodes for Li+ storage, indicating the merit of our scCO2-based synthesis, which is facile, green, and can be easily scaled up for mass production.
KW - batteries
KW - cobalt
KW - energy storage
KW - green chemistry
KW - supercritical fluids
UR - http://www.scopus.com/inward/record.url?scp=85018967878&partnerID=8YFLogxK
U2 - 10.1002/cssc.201700171
DO - 10.1002/cssc.201700171
M3 - Article
C2 - 28318144
AN - SCOPUS:85018967878
VL - 10
SP - 2464
EP - 2472
JO - ChemSusChem
JF - ChemSusChem
SN - 1864-5631
IS - 11
ER -