• Title/Summary/Keyword: Photonic Sensor

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Hydrogen Detection System Based on Pd Coated Single Mode Fiber Sensor (Pd이 코팅된 단일모드 광섬유 센서를 이용한 수소 검출 시스템)

  • Kim, Kwang-Taek;Park, Son-Oc;HwangBo, Seung;Mah, Jae-Pyung;Baik, Se-Jong;Im, Kie-Gon;Kim, Tae-Un;Kim, Hwe-Jong
    • Korean Journal of Optics and Photonics
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    • v.18 no.6
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    • pp.389-394
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    • 2007
  • The characteristics of the single mode fiber hydrogen sensor have been investigated theoretically and experimentally. Palladium is adopted as a material for the transducer and a thin Ni film is used for the adhesion between the fiber end and the Pd film. It is shown that sensitivity and response time strongly depend on the thickness of Pd film. The single mode fiber sensor coated with 5 nm thick Ni adhesion layer and 10 nm thick Pd transducer layer showed 0.6 dB change of reflectivity and $3{\sim}5$ sec of response time as it absorbed 4% hydrogen gas.

Highly-birefringent Photonic Crystal Fiber with Squeezed Lattice for Strain, Curvature and Temperature Sensing (큰 복굴절 특성을 가지는 광자결정 광섬유를 이용한 스트레인, 구부림 및 온도 특성)

  • Eom, Sung-Hoon;Kim, Gil-Hwan;Hwang, Hyu-Jin;Ma, Kyung-Sik;Lee, Kwan-Il;Jeong, Je-Myung;Lee, Sang-Bae
    • Korean Journal of Optics and Photonics
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    • v.21 no.6
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    • pp.230-234
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    • 2010
  • Highly-Birefringent Photonic Crystal Fiber (Hi-Bi PCF) is composed of a single material, silica, so that its temperature sensitivity is extremely low. Therefore, we propose afiber based Sagnac interferometer for measurement of strain and curvature independent of temperature variation. The sensitivities of strain and curvature (both axes) are measured to be $1.41\;pm/{\mu}{\varepsilon}$ and $0.93nm/m^{-1}$(slow axis Y), $-1.6\;nm/m^{-1}$(fast axis X), respectively.

A Transverse Load Sensor with Reconfigurable Measurement Accuracy Based on a Microwave Photonic Filter

  • Chen, Han;Li, Changqing;Min, Jing
    • Current Optics and Photonics
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    • v.2 no.6
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    • pp.519-524
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    • 2018
  • We propose a transverse load sensor with reconfigurable measurement accuracy based on a microwave photonic filter in the $K_u$ band, incorporating a polarization-maintaining fiber Bragg grating. A prototype sensor with a reconfigurable measurement accuracy tuning range from 6.09 to 9.56 GHz/(N/mm), and corresponding minimal detectable load range from 0.0167 to 0.0263 N/mm, is experimentally demonstrated. The results illustrate that up to 40% manufacturing error in the grating length can be dynamically calibrated to the same corresponding measurement accuracy for the proposed transverse load sensor, by controlling the semiconductor optical amplifier's injection current in the range of 154 to 419 mA.

Transparent Plate Thickness Measurement Approach Using a Chromatic Confocal Sensor Based on a Geometric Phase Lens (기하 위상 렌즈 기반의 색공초점 센서를 이용한 투명 물질 두께 측정 연구)

  • Song, Min Kwan;Park, Hyo Mi;Joo, Ki-Nam
    • Korean Journal of Optics and Photonics
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    • v.33 no.6
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    • pp.317-323
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    • 2022
  • In this investigation, we describe a chromatic confocal sensor based on a geometric phase lens for measuring the thicknesses of transparent plates. In order to design a compact sensor, a geometric phase lens, which has diffractive and polarizing characteristics, is used as a device to generate chromatic aberration, and a fiber optic module is adopted. The systematic error of the sensor is reduced with wavelength peak detection by Gaussian curve fitting and the common error compensation obtained by the repeatedly consecutive experimental results. An approach to calculate the plate thickness is derived and verified with sapphire and BK7 plates. Because of the simple and compact design of the proposed sensor with rapid measurement capability, it is expected to be widely used in thickness measurements of transparent plates as an alternative to traditional approaches.

Polarization-Maintaining Photonic-Crystal-Fiber-based Polarimetric Strain Sensor with a Short Sensing Head (짧은 센서부를 가진 편광유지 광자결정 광섬유 기반 편광 간섭형 스트레인 센서)

  • Noh, Tae Kyu;Lee, Yong Wook
    • Korean Journal of Optics and Photonics
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    • v.25 no.3
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    • pp.131-136
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    • 2014
  • In this paper we have implemented a temperature-insensitive polarimetric fiber strain sensor based on a Sagnac birefringence interferometer composed of a short polarization-maintaining photonic crystal fiber (PM-PCF), a 3-dB fiber coupler, and polarization controllers. The PM-PCF used as a sensor head was 2 cm long, which is the shortest length for a sensing element compared to other polarimetric fiber strain sensors using a PM-PCF. The proposed sensor showed a strain sensitivity of ${\sim}0.87pm/{\mu}{\varepsilon}$ with a strain measurement range from 0 to $8m{\varepsilon}$. The temperature sensitivity was also investigated and measured as approximately $-12pm/^{\circ}C$, when ambient temperature changed from 30 to $100^{\circ}C$. This temperature sensitivity is about 82 times smaller than that of conventional polarization-maintaining fiber (approximately $-990pm/^{\circ}C$). In particular, from a practical perspective we have experimentally and theoretically confirmed that the wavelength selected for the indicator dip location does not make a significant difference in the strain sensitivity.

Photonic-Crystal-Based Thin Film Sensor for Detecting Volatile Organic Compounds (광결정 기반의 휘발성 유기 화합물 검지 박막 센서)

  • Chang, Hyung-Kwan;Park, Jungyul
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.40 no.3
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    • pp.149-155
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    • 2016
  • Early detection of toxic gases, such as volatile organic compounds (VOCs), is important for safety and environmental protection. However, the conventional detection methods require long-term measurement times and expensive equipment. In this study, we propose a thin-film-type chemical sensor for VOCs, which consists of self-assembled monosize nanoparticles for 3-D photonic crystal structures and polydimthylsiloxane (PDMS) film. It is operated without any external power source, is truly portable, and has a fast response time. The structure color of the sensor changes when it is exposed to VOCs, because VOCs induce a swelling of the PDMS. Therefore, using this principle of color change, we can create a thin-film sensor for immediate detection of various types of VOCs. The proposed device evidences that a fast response time of just seconds, along with a clear color change, are successfully observed when the sensor is exposed to gas-phase VOCs.

Effects of Substrate on the Characteristics of SnO2 Thin Film Gas Sensors (기판 종류에 따른 박막형 SnO2 가스 센서의 응답특성)

  • Kim, Seon-Hoon;Park, Shin-Chul;Kim, Jin-Hyuk;Moon, Jong-Ha;Lee, Byung-Teak
    • Korean Journal of Materials Research
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    • v.13 no.2
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    • pp.111-114
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    • 2003
  • Effects of substrate materials on the microstructure and the sensitivity of $SnO_2$thin film gas sensors have been studied. Various substrates were studied, such as oxidized silicon, sapphire, polished alumina, and unpolished alumina. It was observed that strong correlation exists between the electrical resistance and the CO gas sensitivity of the manufactured sensors and the surface roughness of $SnO_2$thin films, which in turn was related to the surface roughness of the original substrates. X$SnO_2$thin film gas sensor on unpolished alumina with the highest surface roughness showed the highest initial resistance and CO gas sensitivity. The transmission electron microscopy observation indicated that shape and size of the columnar microstructure of the thin films were not critically affected by the type of substrates.

A Novel Photonic Crystal Fiber Sensor with Three D-shaped Holes Based on Surface Plasmon Resonance

  • Bing, Pibin;Sui, Jialei;Huang, Shichao;Guo, Xinyue;Li, Zhongyang;Tan, Lian;Yao, Jianquan
    • Current Optics and Photonics
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    • v.3 no.6
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    • pp.541-547
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    • 2019
  • A novel photonic crystal fiber (PCF) sensor with three D-shaped holes based on surface plasmon resonance (SPR) is analyzed in this paper. Three D-shaped holes are filled with the analyte, and the gold film is deposited on the side of three planes. The design of D-shaped holes with outward expansion can effectively solve the uniformity problem of metallized nano-coating, it is beneficial to the filling of the analyte and is convenient for real-time measurement of the analyte. Compared with the hexagonal lattice structure, the triangular arrangement of the clad air holes can significantly reduce the transmission loss of light and improve the sensitivity of the sensor. The influences of the air hole diameter, the distance between D-shaped holes and core, and the counterclockwise rotation angle of D-shaped holes on sensing performance are studied. The simulation results show that the wavelength sensitivity of the designed sensor can be as high as 10100 nm/RIU and the resolution can reach 9.9 × 10-6 RIU.

Transmission and Sensing Characteristics of the Biconically Tapered Cladded Multimode Fibers

  • Kim, Kwang-Taek;Hong, Ki-Bum;Park, Jae-Hee
    • Journal of the Optical Society of Korea
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    • v.13 no.2
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    • pp.234-239
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    • 2009
  • This paper presents a theoretical and experimental investigation of the transmission and sensing characteristics of the biconically tapered cladded multimode fibers. The beam propagation method was used to examine the transmission characteristics with various structural parameters. The results show that the transmission of the biconically tapered cladded multimode fibers is sensitive to the mode of the input optical beam and the refractive index of the external medium. A refractive index sensor for the external medium was proposed based on the theoretical analysis, and its feasibility was demonstrated experimentally.

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.