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This paper describes an optimization process for a Radioactive Material Detection Spectroscopic (RMDS) portal, designed to detect and identify radioactive materials concealed inside cargo containers.
The proposed device can be potentially used in biological sensing, material detection, and thermal imaging.
The estimated lifetimes of the detectors are sufficiently long and therefore, the design and the construction are robust and practical for applications such as fissile material detection.
The method is based on non-linear magnetic material detection by a magnetic field having components at two frequencies f1 and f2.
These superior features, including high Q value and large FOM, will be beneficial to the design and development of simple sensors for gas sensing and monitoring, material detection, and bio-medical diagnostics.
Technological impacts on diverse fields such as nuclear material detection, physics-based spectroscopy, monitoring of power levels in nuclear systems, general cavitation physics of fluids, acoustically driven thermonuclear fusion, and super compression states attainment are discussed.
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This is still a developing technology that needs to be advanced for the commercial reprocessing design of used nuclear fuel (UNF) in terms of intelligent materials detection and accountability towards safeguards.
Recent technological developments in the field of non-destructive techniques have enhanced their usefulness in the field of built cultural heritage protection, and are indispensable tools for the characterisation of materials, detection of wear and degradation of materials, assessment of interventions' effectiveness and evaluation of compatible materials and processes.
This efficient functional fabric may be a helpful starting point to develop technical textiles, or the component of a humidity sensor, useful as dual-functional sensing material for detection of environmental humidity/temperature variations.
Praseodymium oxides have been used as high electrical conductive materials [2], a semiconducting oxide for dielectric materials [3], sensing materials for detection of ethanol vapor [4], organic light-emitting diode [5], oxygen-storage components of three-way automotive catalysts [6] and non-volatile ferroelectric random access memory (Nv-FRAM) devices [7].
The assays are designed for detecting viroids from tomato leaf material but detection from other solanaceous hosts of these viroids has been confirmed.
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CEO of Professional Science Editing for Scientists @ prosciediting.com