Phan Vien Nguyen, To Giang Tran, Tuan Loi Nguyen, Duc Anh Dinh, Tran Thi Kieu Ngan, Il Tae Kim, Pham Trung Kien, Nhi Tru Nguyen, Dinh Quan Nguyen, Man Van Tran, Liem Thanh Pham, Bui Thi Thao Nguyen
In this study, tin dioxide (SnO2) nanoparticle samples are synthesized using a wet chemical method, where SnCl4 is used as a precursor and NH4OH as the precipitate, followed by calcination at 400 (SnO2_400), 500 (SnO2_500) and 600 °C (SnO2_600) in Ar gas. Given their nanostructure, these samples exhibit impressive specific capacity and cycling stability when utilized as anodes for lithium-ion batteries. The specific charge-discharge capacity at the first cycles of the SnO2_400, SnO2_500, and SnO2_600 electrodes are 1035/611, 1756/1074, and 1903/1257 mAh g-1, respectively, and the coulombic efficiency remained above 93% after the second cycle. Further, after 100 cycles, the specific capacity of the SnO2_500 electrode is around 1247 mAh g-1, which is about 154% and 377% higher than those of the SnO2_400 and SnO2_600 electrodes, respectively. Moreover, the rate capacity test reveals that the remarkable rate capability reaches 585.8, 891.7, 767.8 mAh g-1 for the SnO2_400, SnO2_500, and SnO2_600 electrodes at a current density of 3 A g-1, respectively. Electrochemical impedance spectroscopy results revealed that the SnO2_500 electrode exhibits a significantly lower total resistance than those of the other two electrodes. The SnO2_500 electrode is more effective than those of the SnO2_400 and SnO2_600 electrodes in terms of energy storage capacity because of its highest pseudocapacitance mechanism, which indicates that the SnO2_500 electrode can realize high-speed charging. Given the high capacity, long-term cycling durability, good high-rate performance, and high pseudocapacitance, SnO2_500 material can become an anode material for lithium-ion batteries in the future.