• 제목/요약/키워드: Field effect transistor (FET)

검색결과 237건 처리시간 0.032초

Si-nanoplate Transistors for Flexible Electronics

  • Kim, Mincheol;Han, Jungkyu
    • EDISON SW 활용 경진대회 논문집
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    • 제2회(2013년)
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    • pp.292-293
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    • 2013
  • Sub 10-nm thick of Si plate is simulated with the software for Nanowire Field Effect Transistor (FET) device simulation. With usual single crystal Si technology, it is difficult to realize flexible electronic devices. Here, we suggest a FET device based on thinned Si layer. The simulation implied a practical limitation of the Si plate thickness for flexible devices as 2 nm. With around this thickness, Si plate may have much flexibility than existing bulk MOSFETs.

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Characteristics of a Titanium-oxide Layer Prepared by Plasma Electrolytic Oxidation for Hydrogen-ion Sensing

  • Lee, Do Kyung;Hwang, Deok Rok;Sohn, Young-Soo
    • 센서학회지
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    • 제28권2호
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    • pp.76-80
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    • 2019
  • The characteristics of a titanium oxide layer prepared using a plasma electrolytic oxidation (PEO) process were investigated, using an extended gate ion sensitive field effect transistor (EG-ISFET) to confirm the layer's capability to react with hydrogen ions. The surface morphology and element distribution of the PEO-processed titanium oxide were observed and analyzed using field-emission scanning-electron microscopy (FE-SEM) and energy-distribution spectroscopy (EDS). The titanium oxide prepared by the PEO process was utilized as a hydrogen-ion sensing membrane and an extended gate insulator. A commercially available n-channel enhancement MOS-FET (metal-oxide-semiconductor FET) played a role as a transducer. The responses of the PEO-processed titanium oxide to different pH solutions were analyzed. The output drain current was linearly related to the pH solutions in the range of pH 4 to pH 12. It was confirmed that the titanium-oxide layer prepared by the PEO process could feasibly be used as a hydrogen-ion-sensing membrane for EGFET measurements.

Flexible biosensors based on field-effect transistors and multi-electrode arrays: a review

  • Kim, Ju-Hwan;Park, Je-Won;Han, Dong-Jun;Park, Dong-Wook
    • Journal of Semiconductor Engineering
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    • 제1권3호
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    • pp.88-98
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    • 2020
  • As biosensors are widely used in the medical field, flexible devices compatible with live animals have aroused great interest. Especially, significant research has been carried out to develop implantable or skin-attachable devices for real-time bio-signal sensing. From the device point of view, various biosensor types such as field-effect transistors (FETs) and multi-electrode arrays (MEAs) have been reported as diverse sensing strategies. In particular, the flexible FETs and MEAs allow semiconductor engineering to expand its application, which had been impossible with stiff devices and materials. This review summarizes the state-of-the-art research on flexible FET and MEA biosensors focusing on their materials, structures, sensing targets, and methods.

ZnO nanowire를 이용한 FET소자의 전기적 특성 (Electrical properties of FET device using ZnO nanowire)

  • 오원석;장건익;이인성;김경원;이상열
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2009년도 하계학술대회 논문집
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    • pp.432-432
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    • 2009
  • 본 연구에서는 HW-PLD(Hot-walled Pulsed Laser Deposition) 법을 이용하여 ZnO 나노와이어를 $Al_2O_3$ 기판 위에 성장하였다. 성장된 ZnO 나노와이어는 SEM, XRD, PL 분석을 통하여 구조적 특성을 확인하였으며, 성장된 나노와이어를 photolithography 공정을 통하여 FET(Field Effect Transistor)소자를 제작하였다. 제작된 소자의 I-V 특성 측정 결과 Ti/Au 전극과 ZnO nanowire 채널 간에 ohmic 접합이 형성된 것을 확인하였으며 게이트 전압의 증가에 따라 소스와 드레인 사이의 전류가 증가하는 전형적인 n-type FET소자 특성을 나타내었다.

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Effects of metal contacts and doping for high-performance field-effect transistor based on tungsten diselenide (WSe2)

  • Jo, Seo-Hyeon;Park, Jin-Hong
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.294.1-294.1
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    • 2016
  • Transition metal dichalcogenides (TMDs) with two-dimensional layered structure, such as molybdenum disulfide (MoS2) and tungsten diselenide (WSe2), are considered attractive materials for future semiconductor devices due to its relatively superior electrical, optical, and mechanical properties. Their excellent scalability down to a monolayer based on the van der Waals layered structure without surface dangling bonds makes semiconductor devices based on TMD free from short channel effect. In comparison to the widely studied transistor based on MoS2, researchs focusing on WSe2 transistor are still limited. WSe2 is more resistant to oxidation in humid ambient condition and relatively air-stable than sulphides such as MoS2. These properties of WSe2 provide potential to fabricate high-performance filed-effect transistor if outstanding electronic characteristics can be achieved by suitable metal contacts and doping phenomenon. Here, we demonstrate the effect of two different metal contacts (titanium and platinum) in field-effect transistor based on WSe2, which regulate electronic characteristics of device by controlling the effective barreier height of the metal-semiconductor junction. Electronic properties of WSe2 transistor were systematically investigated through monitoring of threshold voltage shift, carrier concentration difference, on-current ratio, and field-effect mobility ratio with two different metal contacts. Additionally, performance of transistor based on WSe2 is further enhanced through reliable and controllable n-type doping method of WSe2 by triphenylphosphine (PPh3), which activates the doping phenomenon by thermal annealing process and adjust the doping level by controlling the doping concentration of PPh3. The doping level is controlled in the non-degenerate regime, where performance parameters of PPh3 doped WSe2 transistor can be optimized.

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Design and Evaluation of Cascode GaN FET for Switching Power Conversion Systems

  • Jung, Dong Yun;Park, Youngrak;Lee, Hyun Soo;Jun, Chi Hoon;Jang, Hyun Gyu;Park, Junbo;Kim, Minki;Ko, Sang Choon;Nam, Eun Soo
    • ETRI Journal
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    • 제39권1호
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    • pp.62-68
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    • 2017
  • In this paper, we present the design and characterization analysis of a cascode GaN field-effect transistor (FET) for switching power conversion systems. To enable normally-off operation, a cascode GaN FET employs a low breakdown voltage (BV) enhancement-mode Si metal-oxide-semiconductor FET and a high-BV depletion-mode (D-mode) GaN FET. This paper demonstrates a normally-on D-mode GaN FET with high power density and high switching frequency, and presents a theoretical analysis of a hybrid cascode GaN FET design. A TO-254 packaged FET provides a drain current of 6.04 A at a drain voltage of 2 V, a BV of 520 V at a drain leakage current of $250{\mu}A$, and an on-resistance of $331m{\Omega}$. Finally, a boost converter is used to evaluate the performance of the cascode GaN FET in power conversion applications.

Parylene 고분자 유전체 표면제어를 통한 OFET의 소자 안정성 향상 연구 (Improvement of Operating Stabilities in Organic Field-Effect Transistors by Surface Modification on Polymeric Parylene Dielectrics)

  • 서정윤;오승택;최기헌;이화성
    • 접착 및 계면
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    • 제22권3호
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    • pp.91-97
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    • 2021
  • 본 연구는 Parylene C 유전체 표면에 유기 자기조립단분자막(self-assembled monolayer, SAM) 중간층을 도입함으로써 표면특성을 제어하고 최종적으로 유기전계효과 트랜지스터(organic field-effect transistors, OFETs)의 전기적 안정성을 향상시킨 결과를 제시하였다. 유기 중간층을 적용함으로써, Parylene C 게이트 유전체의 표면 에너지를 제어하였으며, OFET의 가장 중요한 성능변수인 전계효과 이동도(field-effect transistor, μFET)와 문턱 전압 (threshold voltage, Vth)의 성능향상과 구동 안정성을 증대시켰다. 단순히 Parylene C 유전체를 적용한 Bare OFET에서 μFET 값은 0.12 cm2V-1s-1가 측정되었으나, hexamethyldisilazane (HMDS)과 octadecyltrichlorosilane (ODTS)를 중간층으로 적용된 소자에서는 각각 0.32과 0.34 cm2V-1s-1로 μFET가 증가하였다. 또한 1000번의 transfer 특성의 반복측정을 통해 ODTS 처리한 OFET의 μFET와 Vth의 변화가 가장 작게 나타남을 확인하였다. 이 연구를 통해 유기 SAM 중간층, 특히 ODTS는 효과적으로 Parylene C 표면을 알킬 사슬로 덮어 극성도를 낮춤과 함께 전하 트래핑을 감소시켜 소자의 전기적 구동 안정성을 증가시킬 수 있음을 확인하였다.

Direct Electrical Probing of Rolling Circle Amplification on Surface by Aligned-Carbon Nanotube Field Effect Transistor

  • Lee, Nam Hee;Ko, Minsu;Choi, Insung S.;Yun, Wan Soo
    • Bulletin of the Korean Chemical Society
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    • 제34권4호
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    • pp.1035-1038
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    • 2013
  • Rolling circle amplification (RCA) of DNA on an aligned-carbon nanotube (a-CNT) surface was electrically interfaced by the a-CNT based filed effect transistor (FET). Since the electric conductance of the a-CNT will be dependent upon its local electric environment, the electric conductance of the FET is expected to give a very distinctive signature of the surface reaction along with this isothermal DNA amplification of the RCA. The a-CNT was initially grown on the quartz wafer with the patterned catalyst by chemical vapor deposition and transferred onto a flexible substrate after the formation of electrodes. After immobilization of a primer DNA, the rolling circle amplification was induced on chip with the a-CNT based FET device. The electric conductance showed a quite rapid increase at the early stage of the surface reaction and then the rate of increase was attenuated to reach a saturated stage of conductance change. It took about an hour to get the conductance saturation from the start of the conductance change. Atomic force microscopy was used as a complementary tool to support the successful amplification of DNA on the device surface. We hope that our results contribute to the efforts in the realization of a reliable nanodevice-based measurement of biologically or clinically important molecules.

유기 박막 트랜지스터 (Organic TFT)의 유기 활성층 기술 동향

  • 장상웅;최준환;윤호규;이주원;주병권;김재경
    • E2M - 전기 전자와 첨단 소재
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    • 제17권8호
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    • pp.3-12
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    • 2004
  • 유기 박막 트랜지스터 (Organic Thin film Transistors ; 이하 OTFT)는 1986년부터(1) 반도체 장치의 새로운 부류로 급속하게 발전해 오고 있다. 반도체 산업에 있어 이러한 유기물질의 큰 발전은 1947년에 있었던 최초의 inorganic FET (Field Effect Transistor) 탄생에 버금갈 만한 성과라고 여겨진다.(중략)

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