详细信息

Synthesis and adsorption properties of metal oxide-coated lithium ion-sieve from salt lake brine  ( SCI-EXPANDED收录 EI收录)  

文献类型:期刊文献

英文题名:Synthesis and adsorption properties of metal oxide-coated lithium ion-sieve from salt lake brine

作者:Bao, Lu-Ri[1,2];Zhang, Jing-Ze[2];Tang, Wei-Ping[2];Sun, Shu-Ying[1]

机构:[1]East China Univ Sci & Technol, Natl Engn Res Ctr Integrated Utilizat Salt Lake Re, Shanghai 200237, Peoples R China;[2]Shanghai Inst Space Power Sources SISP, State Key Lab Space Power Sources Technol, Shanghai 200245, Peoples R China

年份:2023

卷号:546

外文期刊名:DESALINATION

收录:;EI(收录号:20224413052046);WOS:【SCI-EXPANDED(收录号:WOS:000885513300001)】;

基金:This work was financially supported by the Natural Science Foundation of China (U20A20142, 21266014) , Shanghai Pujiang Program (2019PJD011) and Pre -research Projects in the Field of Manned Spaceflight (050402) .

语种:英文

外文关键词:Li1; 6Mn1; Ion-sieve; Surface coating; Mn dissolution loss; Structural stability

摘要:The Mn-based Li1.6Mn1.6O4 ion sieve is among the most effective lithium adsorbents due to its high lithium-ion adsorption capacity and selectivity for Li-ions. However, the inherent disadvantages of manganese dissolution and low structural stability prevent its industrial application. In this study, a series of Li1.6Mn1.6O4@R were synthesized by the low temperature solid phase hydrothermal method that exhibit highly anti-dissolution properties for the lithium adsorption from brine water. The LMO-L, LMO-LM, and LMO-M adsorbents show great adsorption capacities of 46.0 mg g-1, 43.0 mg g-1, and 38.0 mg g-1 compared to the 42.3 mg g-1 for the pristine adsorbent. After 20 cycles the dissolution loss of Mn was 0.06 % of LMO-L adsorbents. This improvement in adsorption properties is attributed to the stabilized layered structure due to the evolution of oxygen during the coating reaction, and the inhibition of the interfacial side reactions between the solution and the adsorbent by metal oxide coating. X-ray diffraction, and X-ray photoelectron spectroscopy analysis indicate the formation of Li2MnO3 on the material surface, which can increase tetravalent manganese on the surface. Furthermore, our work may provide new insights for the design of efficient Mn-based adsorbents with high stability for water treatment applications.

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