Department of Chemical Engineering, Taiyuan University of Technology, Taiyuan 030024, China.
Department of Chemical Engineering, Taiyuan University of Technology, Taiyuan 030024, China; North Japan Research Institute for Sustainable Energy (NJRISE), Hirosaki University, 2-1-3, Matsubara, Aomori 030-0813, Japan.
J Hazard Mater. 2015 May 30;289:91-100. doi: 10.1016/j.jhazmat.2015.02.039. Epub 2015 Feb 16.
An electroactive hybrid film composed of amorphous α-zirconium phosphate and polyaniline (α-ZrP/PANI) is controllably synthesized on carbon nanotubes (CNTs) modified Au electrodes in aqueous solution by cyclic voltammetry method. Electrochemical quartz crystal microbalance (EQCM), scanning electron microscopy (SEM) and X-ray power diffraction (XRD) analysis are applied for the evaluation of the synthesis process. It is found that the exfoliated amorphous α-ZrP nanosheets are well dispersed in PANI and the hydrolysis of α-ZrP is successfully suppressed by controlling the exfoliation temperature and adding appropriate supporting electrolyte. The insertion/release of heavy metals into/from the film is reversibly controlled by a potential-triggered mechanism. Herein, α-ZrP, a weak solid acid, can provide an acidic micro-environment for PANI to promote the electroactivity in neutral aqueous solutions. Especially, the hybrid film shows excellent potential-triggered adsorption of Pb(2+) ion due to the selective complexation of Pb(2+) ion with oxygen derived from P-O-H of α-ZrP. Also, it shows long-term cycle stability and rapid potential-responsive adsorption/desorption rate. This kind of novel hybrid film is expected to be a promising potential-triggered ESIX material for separation and recovery of heavy metal ions from wastewater.
采用循环伏安法在 CNTs 修饰的 Au 电极上于水溶液中可控合成了由无定形α-磷酸锆和聚苯胺(α-ZrP/PANI)组成的电活性杂化膜。电化学石英晶体微天平(EQCM)、扫描电子显微镜(SEM)和 X 射线粉末衍射(XRD)分析用于评估合成过程。发现剥离的无定形α-ZrP 纳米片在 PANI 中良好分散,通过控制剥离温度和添加适当的支持电解质成功抑制了α-ZrP 的水解。通过电势触发机制可逆地控制重金属的插入/释放。在此,弱固体酸α-ZrP 可为 PANI 提供酸性微环境,以促进中性水溶液中的电活性。特别是,由于α-ZrP 中 P-O-H 与 Pb(2+) 离子的选择性络合,杂化膜对 Pb(2+) 离子表现出优异的电势触发吸附。此外,它还表现出长期循环稳定性和快速的电势响应吸附/解吸速率。这种新型杂化膜有望成为一种有前途的电势触发 ESIX 材料,可用于从废水中分离和回收重金属离子。