• Title/Summary/Keyword: Bandgap

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A Design of CMOS VCO Using Bandgap Voltage Reference (밴드갭 기준 전압을 이용한 CMOS 전압 제어 발진기의 설계)

  • 최진호
    • The Transactions of the Korean Institute of Electrical Engineers C
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    • v.52 no.10
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    • pp.425-430
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    • 2003
  • A CMOS Voltage-Controlled Oscillator(VCO) for application at temperature stable system is designed. The VCO consists of bandgap voltage reference circuit, comparator, and voltage-to-current converter and the VCO has a temperature stable characteristics. The difference between simulated and calculated values is less than about 5% in output characteristics when the input voltage range is from 1V to 3.25V. The CMOS VCO has error less than about $\pm$0.85% in the temperature range from $-25^{\circ}C$ to $75^{\circ}C$.

A New Curvature-Compensated CMOS Bandgap Reference with Low Power Consumption

  • Gil, JoonHo;Je, Minkyu;Cho, YoungHo;Shin, Hyungcheol
    • Proceedings of the IEEK Conference
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    • 2000.07b
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    • pp.612-614
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    • 2000
  • We propose a new curvature-compensated CMOS bandgap reference circuit that is achieved by varying a current ratio. The proposed circuit is shown to have small temperature coefficient that the output voltage variation is 0.4mV.

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Bandgap Tuning in InGaAs/InGaAsP Laser Structure by Quantum Well Intermixing

  • Nah Jongbum;Kam PatrickLi
    • Korean Journal of Optics and Photonics
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    • v.16 no.2
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    • pp.159-161
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    • 2005
  • We report the selective area bandgap tuning of multiple quantum well structures by an impurity free vacancy induced quantum well intermixing technique. A 3dB waveguide directional coupler was fabricated in the disordered section of an intermixed quantum well sample as a demonstration of photonic device applications.

Optical Acetylene Gas Detection using a Photonic Bandgap Fiber and Fiber Bragg Grating (광섬유 격자와 포토닉 밴드갭 광섬유를 이용한 아세틸렌가스 검출)

  • Lee, Yun-Kyu;Lee, Kyung-Shik
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.47 no.7
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    • pp.23-29
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    • 2010
  • We propose an optical gas sensor, which consists of a hollow core photonic bandgap fiber (HC-PBGF) and fiber Bragg grating (FBG), for the detection of acetylene gas. The gas detection scheme is uniquely characterized by modulating the Bragg wavelength of the fiber Bragg grating around a selected absorption line of gas filled in the photonic bandgap fiber. In the measurement, a 2m-long HC-PBGF and FBG with a Bragg wavelength of 1539.02nm were used. The FBG was modulated at 2Hz. We demonstrated that the optical fiber gas sensor was able to selectively measure the 2.5% and 5% of acetylene gases.

Fabrication and Characteristics of a-SiNx:H Thin Films (a-SiNx:H 박막의 제조 및 특성)

  • Park, Wug-Dong;Kim, Young-Jin;Kim, Ki-Wan
    • Journal of Sensor Science and Technology
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    • v.4 no.2
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    • pp.58-63
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    • 1995
  • The effects of substrate temperature, RF power, and $NH_{3}/SiH_{4}$ gas flow ratio on the dielectric constant and optical bandgap of amorphous silicon nitride (a-SiNx:H) thin films prepared by PECVD method using RF glow discharge decomposition of $SiH_{4}$ and $NH_{3}$ gas mixtures have been studied. The dielectric constant and optical bandgap of a-SiNx:H thin films were greatly exchanged as by increasing substrate temperature, RF power, and $NH_{3}/SiH_{4}$ gas flow ratio. The dielectric constant of a-SiNx:H films was increased and optical bandgap of a-SiNx:H films was decreased as the substrate temperature was increased. When the substrate temperature, RF power, gas pressure, $NH_{3}/SiH_{4}$ gas flow ratio, and thickness were $250^{\circ}C$, 20 W, 500 mTorr, 10 and $1500\;{\AA}$, respectively, the dielectric constant, breakdown field and optical bandgap of a-SiNx:H film were 4.3, 1 MV/cm, and 2.9 eV, respectively.

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Design of a Compact and Wide Bandstop Filter using a Multilayered Photonic Bandgap Structure (다층 포토닉 밴드갭 구조를 이용한 소형의 광대역 저지 여파기 설계)

  • Seo, Jae-Ok;Park, Seong-Dae;Kim, Jin-Yang;Lee, Hai-Young
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.39 no.11
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    • pp.34-39
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    • 2002
  • In this paper, we proposed novel photonic bandgap(PBG) structure using EGP(Elevated Ground Plane) and via in ceramic substrate of microstrip line. From analysis result, the proposed PBG structure is reduced 52.5% at size and increased 45 % at bandwidth compared to typical planar PBG structure. It is also reduced 32 % at size and improved more than 8 dB at power loss compared to typical multilayer DGS(Defected Ground Structure). The proposed PBG structure also can be used bandstop and lowpass filter and it will be useful for small microwave integrated circuit and module development.