Direct detection and time-locked subsampling applied to pulsed electron paramagnetic resonance imaging

Pursley, Randall H. ; Salem, Ghadi ; Pohida, Thomas J. ; Devasahayam, Nallathamby ; Subramanian, Sankaran ; Krishna, Murali C. (2005) Direct detection and time-locked subsampling applied to pulsed electron paramagnetic resonance imaging Review of Scientific Instruments, 76 (5). 053709_1-053709_6. ISSN 0034-6748

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Official URL: http://rsi.aip.org/resource/1/rsinak/v76/i5/p05370...

Related URL: http://dx.doi.org/10.1063/1.1903163

Abstract

The application of direct time-locked subsampling (TLSS) to Fourier transform electron paramagnetic resonance (FT-EPR) spectroscopy at radio frequencies (rf) is described. With conventional FT-EPR spectroscopy, the high Larmor frequencies (L)often necessitate the use of intermediate frequency (IF) stages to down convert the received free induction decay (FID) signal to a frequency that can be acquired with common data acquisition technology. However, our research focuses on in vivo studies, and consequently utilizes a FT-EPR system with a Lf of 300 MHz. This relatively low frequency Lf, in conjunction with the advent of bandpass sampling analog-to-digital conversion and signal processing technologies, has enabled us to omit the IF stage in our FT-EPR system. With this in mind, TLSS techniques have been developed to directly sample the 300 MHz FID signal at a sampling rate of 80 MHz providing a signal bandwidth of 20 MHz. The required modifications to the data acquisition and processing system specific to this application are described. Custom software developed to control the EPR system setup, acquire the signals, and post process the data, is outlined. Data was acquired applying both coherent averaging and stochastic excitation sequences. The results of these experiments demonstrate digital down conversion of the 300 MHz FID signal to quadrature baseband. Direct FID TLSS eliminates many noise sources common in EPR systems employing traditional analog receiver techniques, such as the IF mixer stage in single channel systems, and the quadrature baseband mixer stage in dual channel systems.

Item Type:Article
Source:Copyright of this article belongs to American Institute of Physics.
Keywords:EPR Imaging; Biomedical MRI; Fourier Transform Spectra; Medical Image Processing; Image Sampling; Data Acquisition; Digital Signal Processing Chips; Analogue-digital Conversion; Stochastic Processes; Noise
ID Code:51953
Deposited On:01 Aug 2011 07:36
Last Modified:01 Aug 2011 07:36

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