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분류식 습도 발생 장치 개발 및 라디오존데 습도센서 저온 효과 보정에 활용 연구
장은정 ( Eun-jeong Jang ),이영석 ( Young-suk Lee ),최병일 ( Byung-il Choi ),최윤석 ( Yoonseuk Choi ),이상욱 ( Sang-wook Lee ) 한국센서학회 2021 센서학회지 Vol.30 No.4
Humidity is an important physical quantity that is closely related with the quality of everyday life as well as the quality control of products in various industries. Here, we have developed a divided-flow type humidity generator of which humidity generation is faster than the saturator-based humidity generator in ppm level. The operation principle of the divided-flow humidity generator is first introduced. Then, the performance of the divided-flow humidity generator is verified by testing the radiosonde humidity sensor at low temperature. As a result, the humidity generated from the divided-flow humidity generator is consistent with the saturator-based precision humidity generator within 1.6% relative humidity in the range from 10% to 40% at -45 ℃. It is also found that the radiosonde humidity sensor shows measurement errors by 3% - 5% at -45 ℃ when it is only calibrated at room temperature. The response times of radiosonde humidity sensor using the divided-flow humidity generator are between about 2 and 9 minutes, whereas those by the saturatorbased humidity generator are about 20 minutes. In this regard, the divided-flow humidity generator has a merit in terms of fast humidity changes for the calibration of radiosonde humidity sensors at low-temperatures.
용액 공정 처리된 구리(I) 티오시아네이트(CuSCN) 필름의 정공 주입 특성 연구
장은정 ( Eun-jeong Jang ),성백상 ( Baeksang Sung ),권성민 ( Sungmin Kwon ),최윤석 ( Yoonseuk Choi ),이종희 ( Jonghee Lee ),이재현 ( Jae-hyun Lee ) 한국공업화학회 2024 공업화학 Vol.35 No.1
대면적 유기 발광 다이오드, 유기 태양 전지, 박막 트렌지스터의 정공 주입층으로써 CuSCN의 효과가 많이 입증되었다. 따라서 본 연구에서는 용액 공정 조건에 따라 CuSCN의 표면과 광학적, 전기적 분석을 하여 최적화된 필름의 조건을 제시하였다. 다양한 CuSCN 용액의 농도를 제작하여 필름 표면 특성을 확인하였고, 필름의 표면이 소자의 전기적 성능에 영향을 미치는지 확인하였다. CuSCN의 용액의 농도가 낮을 때는 CuSCN의 필름이 형성되지 않고 island 형태로 코팅되었고, 용액의 농도가 증가할수록 CuSCN의 필름이 균일하게 형성하였고 이는 소자의 전도도 향상에 기여하였다. 또한 hole only device를 제작하여 CuSCN의 정공 수송 층으로써의 역할을 입증하였다. The effectiveness of CuSCN as a hole injection layer in large-area organic light-emitting diodes, organic solar cells, and thin-film transistors has been well demonstrated. Therefore, in this study, the surface, optical, and electrical analyses of CuSCN were carried out according to the solution process conditions in order to propose optimized film conditions. Various CuSCN solution concentrations were prepared to determine the film surface characteristics and to determine whether the film surface affects the electrical performance of the device. When the CuSCN solution concentration was low, the CuSCN film was not formed and coated in the form of islands, and when the solution concentration was increased, the CuSCN film was formed uniformly, which contributed to improving the conductivity of the device. In addition, a hole-only device was fabricated to demonstrate the role of CuSCN as a hole transport layer.
BIPV 시스템을 위한 전이금속 산화물 다중층 컬러 유리 구현 기술 연구
안현식(Hyeon-Sik Ahn),Akpeko Gasonoo,장은정(Eun-Jeong Jang),김민회(Min-Hoi Kim),이재현(Jae-Hyun Lee),최윤석(Yoonseuk Choi) 한국전기전자학회 2019 전기전자학회논문지 Vol.23 No.4
이 논문에서는 전이 금속 산화물(TMO)층으로 구성된 다층 박막을 사용하는 BIPV(Building Integrated Photovoltaic) 시스템용 전면 컬러 유리를 제안하였다. 몰리브덴 산화물(MoO₃) 및 텅스텐 산화물(WO₃)은 굴절률 차이가 큰 계면을 형성하여 적절한 간섭효과를 얻을 수 있다. 단일 Thermal Evaporator 증착 방법을 통해 다층 박막을 제작함으로써 간단하고 빠르며 저렴한 제조 방법을 제안하였다. MoO₃(60nm)/WO₃(100nm) 다층 박막으로 90% 이상의 광 투과율을 갖는 자홍색 유리를 시연하였으며, 이 기술은 상용화된 BIPV 시스템에 유용할 것으로 기대된다. This paper proposed colored front panel glass for Building Integrated Photovoltaic (BIPV) systems using multi-layered thin films composed of transition metal oxide (TMO) layers. Molybdenum oxide (MoO₃) and tungsten oxide (WO₃) provided complementary and suitable materials in making effective interference of reflected light from interfaces with significant difference in refractive indices. A simple, fast, and cheap fabrication method was achieved by depositing the multi-layer films in a single thermal evaporator. Magenta colored glass with optical transmittance of more than 90% was achieved with MoO₃(60nm)/WO₃(100nm) multi-layered film. This technology could play in a critical role in commercial BIPV system applications.