气凝胶
吸附
光热治疗
传质
蒸发
离子
材料科学
化学工程
化学
碳纤维
过程(计算)
碳纳米管
光热效应
分析化学(期刊)
传热
检出限
工业废水处理
动力学
废水
活性炭
作者
Jingwen Yu,Shuo Gao,Jiyan Li,Hongru Guo,Fei Wang,Weidong Liang,Rui Jiao,An Li
标识
DOI:10.1021/acs.iecr.6c04325
摘要
Abstract Low-concentration rare-earth industrial wastewater contains low target-ion concentrations and high concentrations of coexisting salts, which limit mass transfer in conventional static adsorption. A biomass-derived dual-network photothermal aerogel (CB@DCP) was developed, and a solar interfacial evaporation-assisted strategy was proposed to intensify mass transfer for selective rare-earth enrichment. CB@DCP comprises carboxymethyl chitosan, oxidized β-cyclodextrin, poly(vinyl alcohol), and carbon black, providing interconnected hierarchical pores, coordination sites, and broadband photothermal conversion. Under 1.0 kW m–2 irradiation, CB@DCP achieved an evaporation rate of 2.19 kg m–2 h–1. Using Nd3+ as a model ion, the dynamic enrichment process achieved an adsorption capacity of approximately 190 mg g–1, compared with 136 mg g–1 under the corresponding static adsorption condition, a 39.7% enhancement. In actual rare-earth industrial wastewater, La3+, Ce3+, Nd3+, and Gd3+ were preferentially enriched, with 85% Gd3+ extraction. These results demonstrate that photothermal evaporation facilitates dynamic rare-earth enrichment by combining evaporation-induced concentration with enhanced ion transport.
科研通智能强力驱动
Strongly Powered by AbleSci AI