Abstract:
A micro heating device according to an embodiment of the inventive concept comprises a support part having at least one or more heating part, an oil chamber positioned over the support part and filled with oil therein, a specimen chamber having a reaction space into which a specimen is loaded and which is provided so as to be dipped into the oil, and a drive part configured to move the specimen chamber in the oil. The specimen chamber includes a temperature sensor for measuring a temperature of the specimen chamber.
Abstract:
Disclosed is a pulsed laser system. The pulsed laser system comprises a laser oscillator, a first optical amplifier on a rear end of the laser oscillator, a first optical adjustor on a rear end of the first optical amplifier, and a second optical adjustor on a rear end of the first optical adjustor. The first optical adjustor comprises a saturable absorber, an adjusting compressor on a rear end of the saturable absorber, and a first plasma mirror on a rear end of the adjusting compressor.
Abstract:
Provided is a method of doping a substrate. The method includes providing the substrate, providing a target material on the substrate, and implanting a dopant of the target material into the substrate by providing a laser beam to the target material.
Abstract:
Provided is a solar cell including a first electrode, a first semiconductor layer on the first electrode, a second semiconductor layer on the first semiconductor layer, and a second electrode on the second semiconductor layer. The second semiconductor layer may include a nano wire that may be formed along a grain boundary of a top surface thereof to have a mesh-shaped structure.
Abstract:
The present inventive concept provides a multiple separation device and a method of separating a blood cancer cell using the same. In the device and the method, a blood sample is put in a fine channel and then cancer cells can be separated according to the type of cancer by controlling a flow velocity of the blood or a magnetic force of ferromagnetic pattern.
Abstract:
Provided are an ion generation target and a treatment apparatus including the target. The treatment apparatus includes a grid having a net shape of nano wires, an ion generation thin film attached to a side of the grid and generating ions by means of an incident laser beam, and a laser for emitting a laser beam into the nano wire of the grid to generate ions from the ion generation thin film and project the ions onto a tumor portion of a patient. The laser beam emitted into the nano wire forms a near field, the intensity of which is higher than that of the laser beam through a nanoplasmonics phenomenon, and the near field emits the ions from the ion generation thin film.
Abstract:
Provided is a charged particle generation device. The charged particle generation device includes a light source unit configured to emit a laser, a target layer that receives the laser and emits charged particles, and a focusing structure disposed on the target layer to focus the laser. The focusing structure includes solid films extending on an upper surface of the target layer in a direction away from the target layer, and a pore section disposed between the solid films and having a porous structure. The focusing structure includes a material having a higher atomic number than carbon.
Abstract:
Provided herein is an integrated target structure for generating charged particles. The integrated target structure according to an embodiment of the present disclosure includes a target layer emitting charged particles depending on an irradiation of a laser beam, an optical component controlling at least one of the laser beam and the charged particles, and a support body supporting the target layer and the optical component using one structure.
Abstract:
Provided is a treating apparatus including an ion generating apparatus configured to inject ionized elements into a diagnosis subject to remove a tumor in the diagnosis subject, and an image photographing apparatus configured to measure positions of the ionized elements in the diagnosis subject. The ion generating apparatus includes a target including a first element and a first isotope that is a radioactive isotope of the first element, and a laser configured to allow a laser beam to be incident on the target and thus ionize the first element and the first isotope.
Abstract:
Provided are an analysis device and an analysis method. According to the device and the method, a giant magnetoresistance (GMR) sensor unit is formed to be the same as the size of one cancer cell or smaller and magnetic resistance according to the number of magnetic nano particles coupled with the one cancer cell by using the GMR sensor unit, thereby not only diagnosing cancer but also simply and cheaply distinguishing the type of the cancer.