Magnetotaxis as a Means for Nanofabrication

Author:

Macwan Isaac1,Zhao Zihe2,Sobh Omar3,Rho Jinnque4,Mahmood Ausif5,Patra Prabir6

Affiliation:

1. Department of Computer Science & Engineering, University of Bridgeport, 221 University Avenue, Bridgeport, CT 06604, United States

2. Department of Biomedical Engineering, University of Bridgeport, 221 University Avenue, Bridgeport, CT 06604, United States

3. Department of Biology, University of Pennsylvania, 249 south 36th street, Philadelphia, PA 19104, United States

4. Department of Biology, University of Bridgeport, 169 University Avenue, Bridgeport, CT 06604, United States

5. Department of Computer Science and Engineering, University of Bridgeport, 221 University Avenue, Bridgeport, CT 06604, United States

6. Department of Mechanical and Biomedical Engineering, University of Bridgeport, 221 University Avenue, Bridgeport, CT 06604, United States

Abstract

Magnetotactic bacteria (MTB), discovered in early 1970s contain single-domain crystals of magnetite ( Fe 3 O 4) called magnetosomes that tend to form a chain like structure from the proximal to the distal pole along the long axis of the cell. The ability of these bacteria to sense the magnetic field for displacement, also called magnetotaxis, arises from the magnetic dipole moment of this chain of magnetosomes. In aquatic habitats, these organisms sense the geomagnetic field and traverse the oxic-anoxic interface for optimal oxygen concentration along the field lines. Here we report an elegant use of MTB where magnetotaxis of Magnetospirillum magneticum (classified as AMB-1) could be utilized for controlled navigation over a semiconductor substrate for selective deposition. We examined 50mm long coils made out of 18AWG and 20AWG copper conductors having diameters of 5mm, 10mm and 20mm for magnetic field intensity and heat generation. Based on the COMSOL simulations and experimental data, it is recognized that a compound semiconductor manufacturing technology involving bacterial carriers and carbon-based materials such as graphene and carbon nanotubes would be a desirable choice in the future.

Publisher

World Scientific Pub Co Pte Lt

Subject

Electrical and Electronic Engineering,Hardware and Architecture,Electronic, Optical and Magnetic Materials

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