Title :
Inlaid Carbon Nanofiber Nanoelectrode Array as Highly Efficient Dielectrophoresis Device for Bacteria Trapping
Author :
Li, Jun ; Arumugam, Prabhu U. ; Chen, Hua ; Cassell, Alan
Author_Institution :
Dept. of Chem., Kansas State Univ., Manhattan, KS
Abstract :
Dielectrophoresis (DEP) is an effective microelectronic technique for trapping and manipulating biological particles in a microfluidic environment, which relies on the highly asymmetric electric field gradient created by the microelectrodes. Here we demonstrate an AC DEP technique for single-bacteria trapping using nanoelectrode arrays (NEAs) in a "points-and-lid" configuration. The NEA is based on vertically aligned carbon nanofibers (CNFs) embedded in SiO2 matrix. The miniaturization of the electrode size provides a highly focused electric field with the gradient enhanced by several orders of magnitude. Finite element modeling indicated that the pDEP force using such NEA-based devices can be increased by over 100 times. Experiments indicated that the bacteria can be trapped instantaneously on to the exposed CNF tip with an AC voltage of ~3 Vpp. In most cases, a single E. coli bacterium is trapped at a single CNF site due to the screening effect. Such nano-DEP device allows the integration of millions of nanolectrodes deterministically in lab-on-a-chip devices that can be used for effective cell manipulating and concentration.
Keywords :
carbon fibres; electrodes; electrophoresis; finite element analysis; microorganisms; nanobiotechnology; nanostructured materials; AC DEP technique; C; E. coli bacterium; bacteria trapping; carbon nanofiber nanoelectrode array; dielectrophoresis device; finite element modeling; microelectronic technique; nanoelectrode arrays; Dielectrophoresis; Electric fields; Electrodes; Finite element methods; Microelectrodes; Microelectronics; Microfluidics; Microorganisms; Nanobioscience; Nanoscale devices;
Conference_Titel :
Nanotechnology, 2008. NANO '08. 8th IEEE Conference on
Conference_Location :
Arlington, Texas
Print_ISBN :
978-1-4244-2103-9
Electronic_ISBN :
978-1-4244-2104-6
DOI :
10.1109/NANO.2008.246