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Related Concept Videos

Gas Chromatography: Types of Detectors-I01:21

Gas Chromatography: Types of Detectors-I

There are different types of detectors used in gas chromatography, each with its own specific properties that make it suitable for detecting certain types of analytes. The most commonly used detectors in GC are thermal conductivity detector (TCD), flame ionization detector (FID), and electron capture detector (ECD).
TCD is the earliest and most widely used detector that operates by measuring the changes in the thermal conductivity of the carrier gas. When a sample compound enters the detector,...
Gas Chromatography: Types of Detectors-II01:19

Gas Chromatography: Types of Detectors-II

In gas chromatography, different detectors are employed to meet specific analytical needs. These detectors are often categorized based on their detection mechanisms and the types of compounds they are best suited to analyze. Thermal Conductivity Detectors (TCD), Flame Ionization Detectors (FID), and Electron Capture Detectors (ECD) represent common categories, each with unique operating principles and applications. However, beyond these, several other detectors are designed for more specialized...
Atomic Emission Spectroscopy: Instrumentation01:22

Atomic Emission Spectroscopy: Instrumentation

The instrumentation of atomic emission spectrometry (AES) involves various components, including atomization devices that convert samples into gas-phase atoms and ions. There are two main types of atomization devices: continuous and discrete atomizers.  Continuous atomizers, like plasmas and flames, introduce samples in a constant stream, while discrete atomizers inject individual samples using syringes or autosamplers. The most common discrete atomizer is the electrothermal atomizer.
Atomic Emission Spectroscopy: Lab01:29

Atomic Emission Spectroscopy: Lab

AES is a powerful analytical technique, especially effective when used with plasma sources, producing abundant spectra in characteristic emission lines. The Inductively Coupled Plasma (ICP), in particular, yields superior quantitative analytical data due to its high stability, low noise, low background, and minimal interferences under optimal experimental conditions. However, newer air-operated microwave sources are emerging as promising alternatives that could be more cost-effective than...
Atomic Absorption Spectroscopy: Instrumentation01:22

Atomic Absorption Spectroscopy: Instrumentation

An atomic absorption spectrophotometer (AAS) comprises several components: a radiation source, an atomizer, a monochromator, and a detector. The radiation source can be a hollow-cathode lamp (HCL) or an electrodeless-discharge lamp (EDL), both of which provide a narrow emission line of the required wavelength. However, some instruments use continuum sources and high-resolution monochromators to achieve a narrow range of radiation.
The atomizer used in AAS can be either a flame atomizer or an...
Inductively Coupled Plasma Atomic Emission Spectroscopy: Instrumentation01:26

Inductively Coupled Plasma Atomic Emission Spectroscopy: Instrumentation

Inductively coupled plasma (ICP) is the common plasma source used in atomic emission spectroscopy (AES), a technique that detects and analyzes various elements in a sample. This method is often called inductively coupled plasma atomic emission spectroscopy (ICP-AES).
There are three main types of inductively coupled plasma atomic emission spectroscopy  (ICP-AES) instruments: sequential, simultaneous multichannel, and Fourier transform instruments, with the latter being less commonly used.

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Related Experiment Video

Updated: May 25, 2026

Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident
09:18

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Published on: December 14, 2017

Nuclear reactor pulse calibration using a CdZnTe electro-optic radiation detector.

Kyle A Nelson1, Jeffrey A Geuther, James L Neihart

  • 1S.M.A.R.T. Laboratory, Mechanical and Nuclear Engineering, Kansas State University, Manhattan, KS 66506, USA. knelson1@ksu.edu

Applied Radiation and Isotopes : Including Data, Instrumentation and Methods for Use in Agriculture, Industry and Medicine
|January 13, 2012
PubMed
Summary

A cadmium zinc telluride (CdZnTe) electro-optic detector calibrated nuclear reactor pulses. This novel Pockels cell method offers precise measurements for nuclear safety and research applications.

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Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident
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Published on: February 1, 2016

Area of Science:

  • Nuclear Engineering
  • Materials Science
  • Optoelectronics

Background:

  • Nuclear reactor pulse calibration is critical for safety and operational efficiency.
  • Traditional calibration methods may have limitations in precision and real-time application.
  • Electro-optic detectors offer potential for advanced measurement techniques.

Purpose of the Study:

  • To calibrate nuclear reactor pulses using a novel electro-optic radiation detector.
  • To evaluate the effectiveness of a Cadmium Zinc Telluride (CdZnTe) Pockels cell for this application.
  • To establish a precise measurement protocol for nuclear reactivity.

Main Methods:

  • A Cadmium Zinc Telluride (CdZnTe) crystal was configured as a Pockels cell with crossed polarizers.
  • Collimated light passed through the CdZnTe crystal, and transmitted light was measured by an infrared (IR) photodiode.
  • Nuclear reactor pulses were simulated and calibrated by measuring changes in photodiode current across varying reactivity levels (1.00–2.50 dollars).

Main Results:

  • The CdZnTe Pockels cell successfully detected and allowed for the calibration of nuclear reactor pulses.
  • Measurements showed a clear correlation between reactor pulse levels and changes in photodiode current.
  • The calibration procedure was repeated 10 times for each reactivity increment, demonstrating consistent results.

Conclusions:

  • The CdZnTe electro-optic detector provides a viable and precise method for calibrating nuclear reactor pulses.
  • This technique enhances the ability to monitor and control nuclear reactor operations.
  • The Pockels cell configuration shows promise for future advancements in nuclear instrumentation.