Electrospun nanofibers in energy and environmental applications

被引:779
作者
Thavasi, V. [1 ]
Singh, G. [1 ]
Ramakrishna, S. [1 ,2 ,3 ]
机构
[1] Natl Univ Singapore, Nanosci & Nanotechnol Initiat, Singapore 117576, Singapore
[2] Natl Univ Singapore, Dept Mech Engn, Singapore 117576, Singapore
[3] Natl Univ Singapore, Div Bioengn, Singapore 117576, Singapore
关键词
D O I
10.1039/b809074m
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nanotechnology is providing new solutions and opportunities to ensure sustainable energy and environments for the future. Materials of nanofiberous morphology are attractive to solve numerous energy and environmental issues. Nanofibers can be effectively produced by electrospinning, which is a simple and low cost technique. In addition, electrospinning allows the production of nanofibers from various materials e. g. organics and inorganics in different configurations and assemblies. This is highly beneficial for energy devices, where inorganic materials especially metal oxides can be synthesized and electrospun, improving conducting and ceramic properties. Excitonic solar cells fabricated with aligned nanofiberous metal oxide electrodes provide higher solar-electric energy conversion efficiency, whereas fuel cells made with nanofiberous electrodes enable uniform dispersion of catalysts, and thus increase electrocatalytic activity to obtain higher chemical-electric energy conversion efficiency. The nanofibers used in filtration membranes for environmental remediation, minimize the pressure drop and provide better efficiency than conventional fiber mats. The large surface area-to-volume ratio of nanofiber membranes allows greater surface adsorption of contaminants from air and water, and increases the life-time of the filtration media. This review highlights the potential and application of electrospun nanofiberous materials for solving critical energy and environmental issues.
引用
收藏
页码:205 / 221
页数:17
相关论文
共 161 条
[1]  
ACRNOUTS T, 2004, THIN SOLID FILMS, V451, P22
[2]   Effect of morphology on electron drift mobility in porous TiO2 [J].
Aduda, BO ;
Ravirajan, P ;
Choy, KL ;
Nelson, J .
INTERNATIONAL JOURNAL OF PHOTOENERGY, 2004, 6 (03) :141-147
[3]   Ion exchanger using electrospun polystyrene nanofibers [J].
An, H. ;
Shin, C. ;
Chase, G. G. .
JOURNAL OF MEMBRANE SCIENCE, 2006, 283 (1-2) :84-87
[4]   A novel direct aerodynamically assisted threading methodology for generating biologically viable microthreads encapsulating living primary cells [J].
Arumuganathar, Sumathy ;
Irvine, Scott ;
McEwan, Jean R. ;
Jayasinghe, Suwan N. .
JOURNAL OF APPLIED POLYMER SCIENCE, 2008, 107 (02) :1215-1225
[5]   A novel direct fibre generation technique for preparing functionalized and compound scaffolds and membranes for applications within the life sciences [J].
Arumuganathar, Sumathy ;
Jayasinghe, Suwan N. .
BIOMEDICAL MATERIALS, 2007, 2 (03) :189-195
[6]   Metal gates and gate-deposition-induced defects in Ta2O5 stack capacitors [J].
Atanassova, E. ;
Spassov, D. ;
Paskaleva, A. .
MICROELECTRONICS RELIABILITY, 2007, 47 (12) :2088-2093
[7]   Electrospun nanofibers of blends of conjugated polymers: Morphology, optical properties, and field-effect transistors [J].
Babel, A ;
Li, D ;
Xia, YN ;
Jenekhe, SA .
MACROMOLECULES, 2005, 38 (11) :4705-4711
[8]   Blue-violet photoluminescence from large-scale highly aligned boron carbonitride nanofibers [J].
Bai, XD ;
Wang, EG ;
Yu, J ;
Yang, H .
APPLIED PHYSICS LETTERS, 2000, 77 (01) :67-69
[9]   Boron carbonitride nanofibers: Synthesis, characterization, and photoluminescence properties [J].
Bai, XD ;
Zhi, CY ;
Wang, EG .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2001, 1 (01) :55-58
[10]   Fine chemical processing: The potential of nanofibres in filtration [J].
Barhate, R. S. ;
Sundarrajan, S. ;
Pliszka, D. ;
Ramakrishna, S. .
FILTRATION & SEPARATION, 2008, 45 (04) :32-35