Terahertz Characterization of DNA: Enabling a Novel Approach

Abstract

The terahertz spectrum of radiation has been determined to be a promising candidate for the characterization of biological molecules, such as DNA. Several alternative methods, including fluorescent chromophore labeling and techniques that use terahertz radiation, have been proposed and are currently in use. Though established, they have disadvantages, such as alteration to the nucleic acid sequence, requirement of a thick DNA testing layer, and conductor structure complexity. This project enables a novel method to identify DNA in a more reliable and less procedurally complicated manner. The method involves the use of terahertz surface plasmon generated on the surface of a gold-coated stainless steel perforated foil. This approach is less expensive and requires smaller quantities of genetic testing material. Such advantages are due to overlapping resonance when the plasmon frequency generated by a foil coincides with that of the biological material. The interference of the impinging terahertz wave and surface plasmon produces spectral graphs, which can be analyzed to identify and characterize a DNA sample. This work sets the foundations of a systematic approach to successfully make the plasmon-based terahertz approach a promising candidate. The location and orientation of the samples were kept constant to obtain conclusive and comparative results. This work offers clear evidence that the DNA molecules under investigation interact with the terahertz wave.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
Nov 01, 2015
Accession Number
ADA624866

Entities

People

  • Daniel Shreiber
  • Molleshree Karna
  • Sarah Stranieri

Organizations

  • University of Illinois Urbana–Champaign

Tags

Communities of Interest

  • Biomedical

DTIC Thesaurus Topics

  • Acids
  • Electromagnetic Fields
  • Electromagnetic Radiation
  • Films
  • Frequency
  • Genetic Testing
  • Materials
  • Military Research
  • Molecules
  • Nucleic Acids
  • Plasmons
  • Resonance
  • Resonant Frequency
  • Sequences
  • Surface Plasmon Polaritons
  • Surface Plasmons
  • Terahertz Radiation

Readers

  • Molecular Genetics
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Systems Analysis and Design

Technology Areas

  • Biotechnology