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Heungjoo Shin
Heungjoo Shin

... This study shows the development of tools for electrical characterization of semiconductor devices and sensor devices, and for electrochemical imaging respectively. The both tools were designed on the basis of the AFM (Atomic Force Microscope) cantilevers that allow for highly accurate control of th ...
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... Renewable energy sources entail the power electronics inverters are the orbit of research objectives for optimum operation. Two commonly used inverters exist; the current source inverters (CSI) and the voltage source inverters (VSI). The first one supports only the boost capability and the other sup ...
Digital devices based on lambda diodes
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... The diagram clearly shows that one of lambda-transistors is not conducted in any of state of the repeater and does not allow running a current from a power supply source. Let's see how it work in detail. Suppose input voltage equals 0V ( '0' logic level ). The lower lambda-transistor is in conductin ...
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... intrinsic magnetic fields, identified by spin • The scattering of electrons in a ferromagnetic material depends on the spin of the electrons • Layers of ferromagnetic material with alternating directions of magnetization exhibit maximum ...
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Semiconductor device



Semiconductor devices are electronic components that exploit the electronic properties of semiconductor materials, principally silicon, germanium, and gallium arsenide, as well as organic semiconductors. Semiconductor devices have replaced thermionic devices (vacuum tubes) in most applications. They use electronic conduction in the solid state as opposed to the gaseous state or thermionic emission in a high vacuum.Semiconductor devices are manufactured both as single discrete devices and as integrated circuits (ICs), which consist of a number—from a few (as low as two) to billions—of devices manufactured and interconnected on a single semiconductor substrate, or wafer.Semiconductor materials are useful because their behavior can be easily manipulated by the addition of impurities, known as doping. Semiconductor conductivity can be controlled by introduction of an electric or magnetic field, by exposure to light or heat, or by mechanical deformation of a doped monocrystalline grid; thus, semiconductors can make excellent sensors. Current conduction in a semiconductor occurs via mobile or ""free"" electrons and holes, collectively known as charge carriers. Doping a semiconductor such as silicon with a small amount of impurity atoms, such as phosphorus or boron, greatly increases the number of free electrons or holes within the semiconductor. When a doped semiconductor contains excess holes it is called ""p-type"", and when it contains excess free electrons it is known as ""n-type"", where p (positive for holes) or n (negative for electrons) is the sign of the charge of the majority mobile charge carriers. The semiconductor material used in devices is doped under highly controlled conditions in a fabrication facility, or fab, to control precisely the location and concentration of p- and n-type dopants. The junctions which form where n-type and p-type semiconductors join together are called p–n junctions.
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