Synthesis of benzo-12-crown-4 ether immobilized silica for lithium-ion adsorption

IF 2.2 4区 化学 Bulletin of the Korean Chemical Society Pub Date : 2024-12-19 DOI:10.1002/bkcs.12926
Yun-Gyeong Jeong, Che-Ryong Lim, Yong-Bok Na, Yeoung-Sang Yun, Se-Jung Kim, Youn-Sik Lee
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Abstract

To develop an adsorbent for Li+ recovery from seawater and/or spent lithium batteries, a benzo-12-crown-4 ether (B12C4) moiety was immobilized with silica (immobilization yield: 0.70 meq g−1). Compared to pure silica, the resulting adsorbent (FB12C4-SG) had a reduced Brunauer–Emmett–Teller surface area (500 vs. 180 m2 g−1) and pore volume (0.75 vs. 0.26 cm3 g−1). The Li+ adsorption reached equilibrium at 31 mg g−1 after 2 h (1000 ppm Li+ solution). The adsorption behavior was well explained by pseudo-second-order kinetics and the Langmuir adsorption model (maximum adsorption capacity: 33 mg g−1). The material exhibited a Li+/Na+ adsorption selectivity factor of 4.2 and high chemical stability under acidic regeneration conditions (1.0 N HCl solution).

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苯并-12-冠-4醚固载二氧化硅吸附锂离子的合成
为了开发一种从海水和/或废锂电池中回收Li+的吸附剂,用二氧化硅固定了苯并-12-冠-4醚(B12C4)部分(固定产率:0.70 meq g−1)。与纯二氧化硅相比,所得吸附剂(FB12C4-SG)的brunauer - emmet - teller表面积(500比180 m2 g−1)和孔隙体积(0.75比0.26 cm3 g−1)减小。在1000 ppm Li+溶液中,在31 mg g−1下吸附2 h后达到平衡。拟二级吸附动力学和Langmuir吸附模型(最大吸附量为33 mg g−1)很好地解释了吸附行为。该材料在酸性再生条件下(1.0 N HCl溶液)Li+/Na+的吸附选择性因子为4.2,具有较高的化学稳定性。
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来源期刊
Bulletin of the Korean Chemical Society
Bulletin of the Korean Chemical Society Chemistry-General Chemistry
自引率
23.50%
发文量
182
期刊介绍: The Bulletin of the Korean Chemical Society is an official research journal of the Korean Chemical Society. It was founded in 1980 and reaches out to the chemical community worldwide. It is strictly peer-reviewed and welcomes Accounts, Communications, Articles, and Notes written in English. The scope of the journal covers all major areas of chemistry: analytical chemistry, electrochemistry, industrial chemistry, inorganic chemistry, life-science chemistry, macromolecular chemistry, organic synthesis, non-synthetic organic chemistry, physical chemistry, and materials chemistry.
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