Burke Aoife M, Hanrahan John P, Healy David A, Sodeau John R, Holmes Justin D, Morris Michael A
Department of Chemistry, Materials Section and Supercritical Fluid Centre, University College Cork, Cork, Ireland.
J Hazard Mater. 2009 May 15;164(1):229-34. doi: 10.1016/j.jhazmat.2008.07.146. Epub 2008 Aug 9.
Here we demonstrate aminopropyl and mercatopropyl functionalised and bi-functionalised large pore mesoporous silica spheres to extract various metal ions from aqueous solutions towards providing active sorbents for mitigation of metal ion pollution. Elemental analysis (EA) and FTIR techniques were used to quantify the attachment of the aminopropyl and mercatopropyl functional groups to the mesoporous silica pore wall. Functionalisation was achieved by post-synthesis reflux procedures. For all functionalised silicas the functionalisation refluxing does not alter particle morphology/agglomeration of the particles. It was found that sorptive capacities of the mesoporous silica towards the functional groups were unaffected by co-functionalisation. Powder X-ray diffraction (PXRD) and nitrogen adsorption techniques were used to establish the pore diameters, packing of the pores and specific surface areas of the modified mesoporous silica spheres. Atomic absorption (AA) spectroscopy and inductively coupled plasma-atomic emission spectrometry (ICP-AES) techniques were used to measure the extraction efficiencies of each metal ion species from solution at varying pHs. Maximum sorptive capacities (as metal ions) were determined to be 384micromolg(-1) for Cr, 340micromol g(-1) for Ni, 358micromol g(-1) for Fe, 364micromol g(-1) for Mn and 188micromol g(-1) for Pd.
在此,我们展示了氨丙基和巯丙基功能化以及双功能化的大孔介孔二氧化硅球,用于从水溶液中提取各种金属离子,以提供活性吸附剂来减轻金属离子污染。采用元素分析(EA)和傅里叶变换红外光谱(FTIR)技术来量化氨丙基和巯丙基官能团与介孔二氧化硅孔壁的附着情况。功能化通过合成后回流程序实现。对于所有功能化的二氧化硅,功能化回流不会改变颗粒的形态/团聚情况。发现介孔二氧化硅对官能团的吸附能力不受共功能化的影响。使用粉末X射线衍射(PXRD)和氮气吸附技术来确定改性介孔二氧化硅球的孔径、孔的堆积情况和比表面积。采用原子吸收(AA)光谱法和电感耦合等离子体原子发射光谱法(ICP - AES)来测量在不同pH值下从溶液中提取每种金属离子的效率。确定最大吸附容量(以金属离子计)对于Cr为384μmol g⁻¹,对于Ni为340μmol g⁻¹,对于Fe为358μmol g⁻¹,对于Mn为364μmol g⁻¹,对于Pd为188μmol g⁻¹。