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废旧磷酸铁锂脱锂后的铁磷渣锂吸附性能
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作者 李立平 黄铿齐 +1 位作者 李煜乾 黄司平 《广州化学》 CAS 2024年第3期36-40,I0002,共6页
以磷酸铁锂正极粉脱锂后的铁磷渣为锂离子筛,高钠锂比的硫酸钠型卤水为原料,系统研究还原剂用量、锂浓度、锂钠比、吸附温度等对铁磷渣锂吸附性能的影响。结果表明,铁磷渣锂吸附性能随着还原剂用量、锂浓度、锂钠比和吸附温度的提高而提... 以磷酸铁锂正极粉脱锂后的铁磷渣为锂离子筛,高钠锂比的硫酸钠型卤水为原料,系统研究还原剂用量、锂浓度、锂钠比、吸附温度等对铁磷渣锂吸附性能的影响。结果表明,铁磷渣锂吸附性能随着还原剂用量、锂浓度、锂钠比和吸附温度的提高而提升;同时,锂钠选择系数与锂钠比呈正相关性,而与吸附温度呈负相关性。经过5次吸附-解吸附循环后,吸附和解吸附过程的溶损率分别低于0.15%和0.002%;同时,铁磷渣的吸附容量基本稳定在2.7mmol/g,Li/Na选择系数为3.88,表现出较佳的锂吸附性能和循环稳定性能。 展开更多
关键词 铁磷渣 离子筛 高钠 锂吸附性能 选择系数
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Synthesis of Li^+ adsorbent(H_2TiO_3) and its adsorption properties 被引量:9
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作者 石西昌 张志兵 +3 位作者 周定方 张丽芬 陈白珍 余亮良 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2013年第1期253-259,共7页
H2TiO3 was obtained from the acid-modified adsorbent precursor Li2TiO3,which was synthesized by a solid-phase reaction between TiO2 and Li2CO3.The extraction ratio of Li+ from Li2TiO3 was 98.86%,almost with no Ti4+ ... H2TiO3 was obtained from the acid-modified adsorbent precursor Li2TiO3,which was synthesized by a solid-phase reaction between TiO2 and Li2CO3.The extraction ratio of Li+ from Li2TiO3 was 98.86%,almost with no Ti4+ extracted.The effects of lithium titanium ratio,calcining temperature and time were investigated on the synthesis of Li2TiO3.Li2TiO3,H2TiO3 and the adsorbed Li+ adsorbent were characterized by XRD and SEM.The lithium adsorption properties were investigated by the adsorption kinetics and adsorption isotherm.The results indicate that H2TiO3 has an excellent adsorptive capacity for Li+.Two simplified kinetic models including the pseudo-first-order and pseudo-second-order equations were selected to follow the adsorption processes.The rate constants of adsorption for these kinetic models were calculated.The results show that the adsorption process can be described by the pseudo-second-order equation,and the process is proved to be a chemical adsorption.The adsorption process that H2TiO3 adsorbs Li+ in LiCl solution well fits the Langmuir equation with monolayer adsorption. 展开更多
关键词 Li+ adsorbent Li2TiO3 adsorption property kinetic models monolayer adsorption TIO2 Li2CO3
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Synthesis and adsorption property of zeolite FAU/LTA from lithium slag with utilization of mother liquid 被引量:7
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作者 林国 庄强 +2 位作者 崔群 王海燕 姚虎卿 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2015年第11期1768-1773,共6页
Co-crystalline zeolite FAU/LTA-0 was synthesized by hydrothermal method from lithium slag. To make the most of excess silicon and alkali sources in mother liquid derived from FAU/LTA-0, zeolite FAU/LTA-I b was synthes... Co-crystalline zeolite FAU/LTA-0 was synthesized by hydrothermal method from lithium slag. To make the most of excess silicon and alkali sources in mother liquid derived from FAU/LTA-0, zeolite FAU/LTA-I b was synthesized in the same method with the use of mother liquid by adding a certain amount of aluminum source. Influences of different adding ways of aluminum source and recycling dosages of mother liquid on synthesis of zeolites FALl/ LTA with mother liquid were investigated. The phase, microstructure and thermostability of FAU/LTA-0 and FAU/LTA-lb were characterized by XRD, SEM and TG-DTA. The calcium and magnesium cation exchange capacities (CECs) of the zeolites were determined. The results have shown that co-crystalline zeolite can be synthesized with the use of mother liquid by adding aluminum source after 2 h of reaction. Compared with FAU/LTA-0, the crystal twinning structure of FAU/LTA-lb became weaker, the grain size was smaller, and the thermostability was better. With a lower dosage of mother liquid, the content of P-type impurity in product decreased significantly, and the content of LTA phase increased. The reuse rate of mother liquid can reach 48%. The CECs of FAU/LTA-I b-150 can reach 343 mg CaCO3. g-1 and 180 mg MgC03. g-1, showing more excellent adsorption capacities than FAU/LTA-0 and commercial zeolite 4A. The full recycling use of mother liquid to synthesize zeolite FAU/LTA which can be applied for detergent not only improves resource utilization but also reduces oroduction cost. 展开更多
关键词 Lithium slagFAU/LTACo-crystalline zeoliteMother liquidDetergent builder
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