水溶液
吸附
亚甲蓝
热液循环
化学工程
化学吸附
材料科学
水热合成
硫化铜
双金属片
朗缪尔吸附模型
柯石英
无机化学
纳米结构
纳米颗粒
比表面积
朗缪尔
化学
带隙
纳米棒
硫化锌
硫化物
铜
选择性吸附
刚果红
核化学
作者
Cátia Liane Ücker,Vinicius Pereira Dias,Darwin de Oliveira Brum,Eduardo Ceretta Moreira,Sergio da Silva Cava,Mateus M. Ferrer,Cristiane Wienke Raubach
标识
DOI:10.1002/slct.202506786
摘要
ABSTRACT Copper sulfide (CuS) nanostructures were synthesized via a microwave‐assisted hydrothermal method and evaluated for methylene blue (MB) removal from aqueous solutions. Compared to conventional wide‐bandgap photocatalysts, CuS offers a narrow band gap, p‐type semiconducting behavior, and strong surface–dye interactions, making it particularly attractive for rapid water treatment processes. The material crystallized in the covellite phase, exhibiting mixed nanoflower, nanoplate, and nanospherical morphologies with a surface area of 2.8 m 2 ·g −1 and a band gap of 1.25 eV. Adsorption experiments revealed ultrafast dye uptake, reaching equilibrium within 30 min. The process followed the Langmuir isotherm with a maximum adsorption capacity of 1.4 mg·g −1 and a high affinity constant (K L = 2.4 × 10 5 L·mg −1 ). Kinetic analysis indicated pseudo‐second‐order behavior, confirming chemisorption as the rate‐limiting step. Despite the low surface area, CuS displayed remarkable adsorption speed and affinity, highlighting its potential as a rapid, low‐cost, and scalable adsorbent for wastewater purification.
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