Nano-Doped Monolithic Materials for Molecular Separation

被引:18
作者
Acquah, Caleb [1 ,2 ]
Obeng, Eugene Marfo [3 ]
Agyei, Dominic [4 ,5 ]
Ongkudon, Clarence M. [3 ]
Moy, Charles K. S. [6 ]
Danquah, Michael K. [1 ,2 ]
机构
[1] Curtin Univ, Curtin Sarawak Res Inst, Miri 98009, Sarawak, Malaysia
[2] Curtin Univ, Dept Chem Engn, Miri 98009, Sarawak, Malaysia
[3] Univ Malaysia Sabah, Biotechnol Res Inst, Kota Kinabalu 88400, Sabah, Malaysia
[4] Deakin Univ, Ctr Chem & Biotechnol, Sch Life & Environm Sci, Waurn Ponds Campus, Geelong, Vic 3220, Australia
[5] Univ Otago, Dept Food Sci, Dunedin 9054, New Zealand
[6] Xian Jiaotong Liverpool Univ, Dept Civil Engn, Suzhou 215123, Peoples R China
关键词
monoliths; nanoparticles; copolymerisation; surface modification; doping; SOL-GEL PROCESS; HYDROPHILIC-INTERACTION CHROMATOGRAPHY; PERFORMANCE LIQUID-CHROMATOGRAPHY; FRONTAL POLYMERIZATION SYNTHESIS; SILICA/ZIRCONIA HYBRID MONOLITH; FUMED SILICA NANOPARTICLES; TEMPERATURE IONIC LIQUID; WALLED CARBON NANOTUBES; BASIC CHIRAL COMPOUNDS; CORE-SHELL PARTICLES;
D O I
10.3390/separations4010002
中图分类号
O65 [分析化学];
学科分类号
070302 [分析化学];
摘要
Monoliths are continuous adsorbents that can easily be synthesised to possess tuneable meso-/macropores, convective fluid transport, and a plethora of chemistries for ligand immobilisation. They are grouped into three main classes: organic, inorganic, and hybrid, based on their chemical composition. These classes may also be differentiated by their unique morphological and physicochemical properties which are significantly relevant to their specific separation applications. The potential applications of monoliths for molecular separation have created the need to enhance their characteristic properties including mechanical strength, electrical conductivity, and chemical and thermal stability. An effective approach towards monolith enhancement has been the doping and/or hybridization with miniaturized molecular species of desirable functionalities and characteristics. Nanoparticles are usually preferred as dopants due to their high solid phase dispersion features which are associated with improved intermolecular adsorptive interactions. Examples of such nanomaterials include, but are not limited to, carbon-based, silica-based, gold-based, and alumina nanoparticles. The incorporation of these nanoparticles into monoliths via in situ polymerisation and/or post-modification enhances surface adsorption for activation and ligand immobilisation. Herein, insights into the performance enhancement of monoliths as chromatographic supports by nanoparticles doping are presented. In addition, the potential and characteristics of less common nanoparticle materials such as hydroxyapatite, ceria, hafnia, and germania are discussed. The advantages and challenges of nanoparticle doping of monoliths are also discussed.
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页数:22
相关论文
共 163 条
[1]
In-process thermochemical analysis of in situ poly(ethylene glycol methacrylate-co-glycidyl methacrylate) monolithic adsorbent synthesis [J].
Acquah, Caleb ;
Danquah, Michael K. ;
Moy, Charles K. S. ;
Ongkudon, Clarence M. .
JOURNAL OF APPLIED POLYMER SCIENCE, 2016, 133 (22)
[2]
Development and characteristics of polymer monoliths for advanced LC bioscreening applications: A review [J].
Acquah, Caleb ;
Moy, Charles K. S. ;
Danquah, Michael K. ;
Ongkudon, Clarence M. .
JOURNAL OF CHROMATOGRAPHY B-ANALYTICAL TECHNOLOGIES IN THE BIOMEDICAL AND LIFE SCIENCES, 2016, 1015 :121-134
[3]
Comparison of core-shell particles and sub-2 μm fully porous particles for use as ultrafast second dimension columns in two-dimensional liquid chtomatography [J].
Ahmad, Imad A. Haidar ;
Soliven, Arianne ;
Allen, Robert C. ;
Filgueira, Marcelo ;
Carr, Peter W. .
JOURNAL OF CHROMATOGRAPHY A, 2015, 1386 :31-38
[4]
Use of cerium oxide (CeO2) as a packing material for the chromatographic separation of C-60 and C-70 fullerenes [J].
Akama, Y .
TALANTA, 1995, 42 (12) :1943-1946
[5]
LIQUID-CHROMATOGRAPHIC SEPARATION OF POLYCYCLIC AROMATIC-HYDROCARBONS WITH CERIUM(IV) OXIDE AS PACKING MATERIAL [J].
AKAMA, Y ;
KANNO, H .
ANALYTICA CHIMICA ACTA, 1995, 309 (1-3) :153-156
[6]
Alla A.J., 2015, Chromatography, V2, P20, DOI DOI 10.3390/CHROMATOGRAPHY2010020
[7]
Graphene Aerogels Decorated with α-FeOOH Nanoparticles for Efficient Adsorption of Arsenic from Contaminated Waters [J].
Andjelkovic, Ivan ;
Tran, Diana N. H. ;
Kabiri, Shervin ;
Azari, Sara ;
Markovic, Marijana ;
Losic, Dusan .
ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (18) :9758-9766
[8]
Non-covalent functionalisation of monolithic silica for the development of carbon nanotube HPLC stationary phases [J].
Andre, Claire ;
Lenancker, Gwenaelle ;
Guillaume, Yves Claude .
TALANTA, 2012, 99 :580-585
[9]
Peculiarities of a novel bioenzymatic reactor using carbon nanotubes as enzyme activity enhancers: Application to arginase [J].
Andre, Claire ;
Agiovlasileti, Danai ;
Guillaume, Yves Claude .
TALANTA, 2011, 85 (05) :2703-2706
[10]
[Anonymous], 2015, CHROMATOGRAPHY, DOI [10.3390/chromatography2010079, DOI 10.3390/chromatography2010079, DOI 10.3390/CHROMATOGRAPHY2010079]