Lu Huiran, Cornell Ann, Alvarado Fernando, Behm Mårten, Leijonmarck Simon, Li Jiebing, Tomani Per, Lindbergh Göran
Applied Electrochemistry, School of Chemical Science and Engineering, KTH Royal Institute of Technology, Stockholm SE-100 44, Sweden.
Innventia AB, Drottning Kristinas väg 61, Stockholm SE-114 28, Sweden.
Materials (Basel). 2016 Feb 25;9(3):127. doi: 10.3390/ma9030127.
The industrial lignin used here is a byproduct from Kraft pulp mills, extracted from black liquor. Since lignin is inexpensive, abundant and renewable, its utilization has attracted more and more attention. In this work, lignin was used for the first time as binder material for LiFePO₄ positive and graphite negative electrodes in Li-ion batteries. A procedure for pretreatment of lignin, where low-molecular fractions were removed by leaching, was necessary to obtain good battery performance. The lignin was analyzed for molecular mass distribution and thermal behavior prior to and after the pretreatment. Electrodes containing active material, conductive particles and lignin were cast on metal foils, acting as current collectors and characterized using scanning electron microscopy (SEM), electrochemical impedance spectroscopy (EIS) and galvanostatic charge-discharge cycles. Good reversible capacities were obtained, 148 mAh·g for the positive electrode and 305 mAh·g for the negative electrode. Fairly good rate capabilities were found for both the positive electrode with 117 mAh·g and the negative electrode with 160 mAh·g at 1C. Low ohmic resistance also indicated good binder functionality. The results show that lignin is a promising candidate as binder material for electrodes in eco-friendly Li-ion batteries.
这里使用的工业木质素是硫酸盐制浆厂的副产品,从黑液中提取。由于木质素价格低廉、储量丰富且可再生,其利用已引起越来越多的关注。在这项工作中,木质素首次被用作锂离子电池中磷酸铁锂正极和石墨负极的粘结剂材料。为了获得良好的电池性能,需要对木质素进行预处理,通过浸出去除低分子部分。在预处理前后对木质素进行了分子量分布和热行为分析。将含有活性材料、导电颗粒和木质素的电极浇铸在金属箔上,金属箔用作集流体,并使用扫描电子显微镜(SEM)、电化学阻抗谱(EIS)和恒电流充放电循环进行表征。获得了良好的可逆容量,正极的可逆容量为148 mAh·g,负极的可逆容量为305 mAh·g。在1C下,正极的倍率性能为117 mAh·g,负极的倍率性能为160 mAh·g,两者都表现出相当好的倍率性能。低欧姆电阻也表明粘结剂功能良好。结果表明,木质素是环保型锂离子电池电极粘结剂材料的一个有前途的候选者。