• 제목/요약/키워드: Bio sensor

검색결과 592건 처리시간 0.028초

결합된 플라즈몬-도파관 공진 구조로 구성된 바이오센서의 구현 (Implementation of Bio-Sensor with Coupled Plasmon-Waveguide Resonance Profile)

  • 호광춘
    • 한국인터넷방송통신학회논문지
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    • 제24권1호
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    • pp.109-114
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    • 2024
  • 결합된 플라즈몬-도파관 공진 (PWR) 구조에서 전파하는 TE, TM 전송 모드들의 바이오 센싱 특성을 조사하였다. 수치해석을 위하여 모드 전송선로 이론 (MTLT)을 사용되었다. 기존의 Ag-기반 표면 플라즈몬 공명 바이오센서의 감도를 향상시키기 위하여, 제안된 PWR 바이오센서는 N쌍의 MgF2-Si3N4 층으로 구성된 다층구조로 설계하였다. 그 바이오센서의 각도 감도가 광범위한 생물학적 용액 (굴절률 1.33~1.37)에 대하여 수치적으로 분석되었다. 더욱이, 암세포와 혈장 농도를 감지하는 센서의 가용성을 조사하였다. 결국, 그 결과들은 제안된 바이오센서가 소변에서 다양한 종류의 암 세포와 다양한 포도당 농도를 효율적으로 감지할 수 있음을 보여주었다.

에너지 효용 증대를 위한 바이오 센서 개발에 관한 연구 (A Study on Development of Ubiquitous Bio-Sensors for Increasing Energy Efficiency)

  • 한승훈
    • 한국태양에너지학회 논문집
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    • 제28권6호
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    • pp.58-63
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    • 2008
  • It is essential to investigate the structure and the main characteristic of Home USN (Ubiquitous Sensor Network) technologies in built ubiquitous environment while designing bio-sensors. For this study, Thermistor elements and Thermopile black body have been selected to implement ubiquitous technologies for bio-sensors and wireless network such as WiBro has been used to transfer sensing data to the BSN (Bio-Sensor Network) gateway. It is certain that efficiency of ubiquitous space design is improved if main components of each specific sensor network are analyzed precisely in digital way and corresponding communication modules are prepared accordingly. Ubiquitous technology, in conclusion, has to be applied not only with systematical mechanism or electronic setting but in human-centered atmosphere as well, keeping with deep consideration for bio-housing service factors in eco-friendly surrounding.

슬관절 운동 평가를 위한 생체 임피던스 측정용 전도성 섬유센서 개발 및 평가 (Development and Assessment of Conductive Fabric Sensor for Evaluating Knee Movement using Bio-impedance Measurement Method)

  • 이병우;이충근;조하경;이명호
    • 대한의용생체공학회:의공학회지
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    • 제32권1호
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    • pp.37-44
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    • 2011
  • This paper describes the development and assessment of conductive fabric sensor for evaluating knee movement using bio-impedance measurement method. The proposed strip-typed conductive fabric sensor is compared with a dot-typed Ag/AgCl electrode for evaluating validity under knee movement condition. Subjects are composed of ten males($26.6{\pm}2.591$) who have not had problems on their knee. The strip-typed conductive fabric sensor is analyzed by correlation and reliability between a dot-typed Ag/AgCl electrode and the strip-typed conductive fabric sensor. The difference of bio-impedance between a dot-typed Ag/AgCl electrode and the strip-typed conductive fabric sensor averages $7.067{\pm}13.987\;{\Omega}$ As the p-value is under 0.0001 in 99% of t-distribution, the strip-typed conductive fabric sensor is correlated with a dot-typed Ag/AgCl electrode by SPSS software. The strip-typed conductive fabric sensor has reliability when it is compared with a dot-typed Ag/AgCl electrode because most of bio-impedance values are in ${\pm}1.96$ standard deviation by Bland-Altman Analysis. As a result, the strip-typed conductive fabric sensor can be used for assessing knee movement through bio-impedance measurement method as a dot-typed Ag/AgCl electrode. Futhermore, the strip-typed conductive fabric sensor is available for wearable circumstances, applications and industries in the near future.

Bio-MAC: WBSN환경에서 다양한 생체신호 전송을 위한 최적화된 MAC Protocol (Bio-MAC: Optimal MAC Protocol for Various Bio-signal Transmission in the WBSN Environment)

  • 장봉문;노영식;유선국
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2007년도 심포지엄 논문집 정보 및 제어부문
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    • pp.423-425
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    • 2007
  • In this paper, Medium Access Control(MAC) protocol designed for Wireless Body area Sensor Network(Bio-MAC) is proposed, Because in WBSN, the number of node is limited and each node has different characteristics. Also, reliability in transmitting vital data sensed at each node and periodic transmission should be considered so that general MAC protocol cannot satisfy such requirements of biomedical sensors in WBSN. Bio-MAC aims at optimal MAC protocol in WBSN. For this, Bio-MAC used Pattern -SuperFrame, which modified IEE E 802.15.4-based SuperFrame structurely. Bio-MAC based on TDMA uses Medium Access-priority and Pattern eXchange -Beacon method for dynamic slot allocation by considering critical sensing data or power consumption level of sensor no de etc. Also, because of the least delay time. Bio-MAC is suitable in the periodic transmission of vital signal data. The simulation results demonstrate that a efficient performance in WBSN can be achieved through the proposed Bio-MAC.

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힘과 온도 측정을 위한 생체모방형 촉각센서 감지부 설계 (Design of sensing .element of bio-mimetic tactile sensor for measurement force and temperature)

  • 김종호;이상현;권휴상;박연규;강대임
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2002년도 추계학술대회 논문집
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    • pp.1029-1032
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    • 2002
  • This paper describes a design of a tactile sensor, which can measure three components force and temperature due to thermal conductive. The bio-mimetic tactile sensor, alternative to human's finger, is comprised of four micro force sensors and four thermal sensors, and its size being 10mm$\times$10mm. Each micro force sensor has a square membrane, and its force range is 0.1N - 5N in the three-axis directions. On the other hand, the thermal sensor for temperature measurement has a heater and four temperature sensor elements. The thermal sensor is designed to keep the temperature. $36.5^{\circ}C$, constant, like human skin, and measure the temperature $0^{\circ}C$ to $50^{\circ}C$. The MEMS technology is applied to fabricate the sensing element of the tactile sensor.

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Current Development in Bio-implantable Sensors

  • Swarup, Biswas;Yongju, Lee;Hyojeong, Choi;Hyeok, Kim
    • 센서학회지
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    • 제31권6호
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    • pp.403-410
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    • 2022
  • Flexible and wearable sensing technologies have emerged as a result of developments in interdisciplinary research across several fields, bringing together various subjects such as biology, physics, chemistry, and information technology. Moreover, various types of flexible wearable biocompatible devices, such customized medical equipment, soft robotics, bio-batteries, and electronic skin patches, have been developed over the last several years that are extensively employed to monitor biological signals. As a result, we present an updated overview of new bio-implantable sensor technologies for various applications and a brief review of the state-of-the-art technologies.

u-EMS : 바이오 센서 네트워크 기반의 응급 구조 시스템 (u-EMS : An Emergency Medical Service based on Ubiquitous Sensor Network using Bio-Sensors)

  • 김홍규;문승진
    • 한국정보과학회논문지:컴퓨팅의 실제 및 레터
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    • 제13권7호
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    • pp.433-441
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    • 2007
  • 바이오센서는 생명공학 또는 의학 분야에서 사용되는 인간의 생체 신호를 감지할 수 있는 센서들로 의료기기에 주로 사용되는데, 최근 MEMS 기술의 발달로 작은 크기의 하드웨어에 센서 인터페이스, 프로세서, 무선통신, 배터리 등을 포함한 모듈을 센서노드(모트 : Mote)들로 구성된 센서기반 네트워크에서 바이오센서 네트워크로 응용분야를 확장하고 있다. 이에 본 논문에서는 바이오센서 기술과 센서네트워크 기술을 융합한 기술인 바이오 센서네트워크를 활용한 응급 구조 시스템의 설계 및 구현을 제안한다. 제안된 시스템에 사용된 바이오센서는 근전도(EKG), 혈압(Blood Pressure), 맥박(Heart Rate), 산소포화도(Pulse Oximeter), 혈당(Glucose)센서들로, 바이오센서에서 측정된 생체 신호를 센서네트워크 모트를 통해 데이타를 수집하고, 수집된 데이타를 이용하여 건강관리 측정 데이타로 활용하였으며 측정된 데이터는 무선단말기(PDA, 휴대폰), 전자액자 디스플레이장치 등에서 확인 가능하도록 구성하였다. 아울러, 제안한 u- 응급 구조 시스템의 유효성을 실험하기 위해서 사용자의 바이탈사인 정보와 주변 환경정보를 고려한 실험을 수행하였다.

Bio-MEMS분야의 최근 연구동향 (Recent research trends on Bio-MEMS)

  • 박세광;양주란
    • 센서학회지
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    • 제19권4호
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    • pp.259-270
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    • 2010
  • MEMS(micro electro mechanical systems) is a technology for the manufacture hyperfine structure, as a micro-sensor and a driving device, by a variety of materials such as silicon and polymer. Many study for utilizing the MEMS applications have been performed in variety of fields, such as light devices, high frequency equipments, bio-technology, energy applications and other applications. Especially, the field of Bio-MEMS related with bio-technology is very attractive, because it have the potential technology for the miniaturization of the medical diagnosis system. Bio-MEMS, the compound word formed from the words 'Bio-technology' and 'MEMS', is hyperfine devices to analyze biological signals in vitro or in vivo. It is extending the range of its application area, by combination with nano-technology(NT), Information Technology(IT). The LOC(lab-on-a-chip) in Bio-MEMS, the comprehensive measurement system combined with Micro fluidic systems, bio-sensors and bio-materials, is the representative technology for the miniaturization of the medical diagnosis system. Therefore, many researchers around the world are performing research on this area. In this paper, the application, development and market trends of Bio-MEMS are investigated.