Zhang Lingjie, Yan Jianglin, Kang Shichang, Wang Zhenlei, Miao Yanhui, Gao Renbo, Zhang Tingting, Ojeda-Galván Hiram Joazet, Quintana Mildred, Bai Haoyu, Song Shaoxian, Zhao Yunliang
School of Resources and Environmental Engineering, Wuhan University of Technology, Wenzhi Street 34, Wuhan, Hubei 430070, China.
Facultad de Ciencias, Universidad Autonoma de San Luis Potosi, Av. Parque Chapultepec 1570, San Luis Potosi 78210, Mexico.
ACS Nano. 2025 Sep 23;19(37):33620-33631. doi: 10.1021/acsnano.5c11936. Epub 2025 Sep 15.
Low-quality brines offer virtually infinite lithium sources to resolve the lithium shortage. Lithium-aluminum layered double hydroxides (LiAl-LDHs) have been commercialized as adsorbents in the lithium extraction industry. However, their application in low-quality brines still faces substantial challenges, including poor extraction efficiency limited by low Li concentration, and "poisoning effect" due to intercalated SO encapsulating adsorption sites. Here, we propose a proof-of-concept polymer side-chain structure design (SCSD) strategy for LiAl-LDHs. This approach enables synergistic intralayer/interlayer engineering of LiAl-LDHs with functional polymers, achieving efficient and highly selective Li extraction from low-quality brines. Moreover, sustainable lithium extraction enables ppb-level residual concentration and production of high-purity LiCO from the world's largest low-quality SO-type brine. By rational design of side chains of polymer building blocks, the local chemical microenvironment and spatial microstructure of LiAl-LDHs can be tailored to accommodate lithium extraction from diverse brines. This work provides a feasible strategy to expand accessible brine resources for the sustainable extraction and recovery of critical metals.
低质量卤水提供了几乎无限的锂源,以解决锂短缺问题。锂铝层状双氢氧化物(LiAl-LDHs)已作为吸附剂在锂提取行业实现商业化。然而,它们在低质量卤水中的应用仍面临重大挑战,包括因锂浓度低而导致的提取效率低下,以及由于插层的SO包裹吸附位点而产生的“中毒效应”。在此,我们提出了一种针对LiAl-LDHs的概念验证聚合物侧链结构设计(SCSD)策略。这种方法能够实现LiAl-LDHs与功能聚合物的层内/层间协同工程,从而从低质量卤水中高效且高选择性地提取锂。此外,可持续的锂提取能够实现ppb级的残留浓度,并从世界上最大的低质量SO型卤水中生产出高纯度的LiCO。通过合理设计聚合物结构单元的侧链,可以调整LiAl-LDHs的局部化学微环境和空间微观结构,以适应从各种卤水中提取锂。这项工作为扩大可利用的卤水来源以实现关键金属的可持续提取和回收提供了一种可行的策略。