Abstract:
The present invention relates to a biochemical fluidic channel read-out sensor which can obtain stability for a long time using a dual heterodyne interferometer. The biochemical fluidic channel read-out sensor comprises: a sample input device having fluid channels; and a dual beam generator for dividing light generated from a light source into first and second beams in parallel. A first interferometer is formed by the first beam, and a second interferometer is formed by the second beam. The first and second interferometers are formed of the same light route in a state of being separated from each other at the distance between the first and second beams. The dual heterodyne interferometer of the biochemical fluidic channel read-out sensor implements the two interferometers actually having the same route in the optical structure of one interferometer using dual beams. Thus, the biochemical fluidic channel read-out sensor obtains the stability for a long time. [Reference numerals] (AA) Metal nanoparticle; (BB) Adhesive strength; (CC,FF) Support; (DD) Measure the adhesive strength; (EE) Metal-coated probe of an AFM
Abstract:
PURPOSE: A free-space optical communication module is provided to input and output an incident light and an emitting light through one lens unit. CONSTITUTION: An optical communication module (10) comprises a light transmitting unit including a light emitting device (LED) (112), a light receiving unit including a photodetector (122), and a lens unit (100). The lens unit is defined by coupling a first lens having a first focal distance and a second lens having a second focal distance. The LED is disposed at a first position at which light outputted from the LED in depth of focus of the first lens spreads at a predetermined divergence angle in correspondence with an optical communication direction. The photodetector is disposed at a second position at which the real image of the light received from the LED of the other optical communication module in depth of focus of the second lens is formed in correspondence with an optical communication direction. [Reference numerals] (116) First amplifier; (118) First signal processor; (126) Second amplifier; (128) Second signal processor
Abstract:
본 발명은 AOM을 이용한 헤테로다인 간섭계이다. 상기 헤테로다인 간섭계는, 광원; 편광빔스플리터; 제1 빛살과 제2 빛살을 일정 각도로 분리하여 출력하는 음향 광 변조기(AOM); 구동 주파수( f RF )에 따라 AOM을 구동시키는 AOM 구동부; 상기 AOM으로부터 출력된 제1 빛살이 진행하는 경로상에 배치되어, 탐사빛(Signal beam)을 제공하는 제1 거울; 상기 AOM으로부터 출력된 제2 빛살이 진행하는 경로상에 고정되어 배치되어 기준빛(Reference beam)을 제공하는 제2 거울; 제1 거울을 움직이게 하는 거울 구동부; 상기 AOM과 거울들과의 사이에 배치되는 QWP; AOM으로부터 출력된 후 PBS에서 반사되어 제1 경로를 따라 진행하는 빛살들에 대한 제1 간섭 신호를 검출하여 출력하는 제1 광검출소자; AOM으로부터 출력된 후 PBS에서 반사되어 제2 경로를 따라 진행하는 빛살들에 대한 제2 간섭 신호를 검출하여 출력하는 제2 광검출소자; 제1 광검출소자 및 제2 광검출소자로부터 제1 간섭 신호 및 제2 간섭 신호의 차이값을 출력하는 차동 증폭기; 변조 주파수를 이용하여 차동 증폭기로부터 제공된 신호를 복조하여 탐사빛에 대한 위상 및 진폭변화를 검출하는 복조기; 를 구비한다.
Abstract:
PURPOSE: A heterodyne light coherent tomographic device using an acoustic light modulation filter is provided to secure information rapidly using a light detection element. CONSTITUTION: A broadband light source provides the rays of light. A polarization beam splitter(310) controls the rays of the light to penetrate or to be reflected depending on the state of polarization. A scanning mirror(340) scans the surface of a sample. A demodulator(376) demodulates detected Interference signals for outputting. A control part(380) detects the tomography information of the sample. [Reference numerals] (330) AOTF driver; (376) Demodulator;