• 제목/요약/키워드: Electrochromic windows

검색결과 27건 처리시간 0.024초

0.5 mm 이내의 두께를 갖는 4층 구조의 스마트 윈도우에 적용되는 전기변색 ECD(electro-chromic device) 필름 제조 및 특성 (Characteristics of an electrochromic ECD (electro-chromic device) film in applications for smart windows with a 4-layer structure, a thickness of 0.5 mm)

  • 김남일;김극태
    • 한국결정성장학회지
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    • 제34권1호
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    • pp.16-21
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    • 2024
  • 전기변색(electrochromic devices, ECD) 방식을 이용하여 외부 전압 인가에 의해 착색된 상태에서 투명한 상태로 색 변화를 일으킬 수 있는 필름 형태의 스마트 윈도우를 제조하였다. 기존 유리 대신 투명 PET 필름을 기재로 사용하였고 ITO/Ag/ITO 전극층, WO3/TIC2 유기변색층, Nafion 전해질층을 차례로 도입한 이후 합지 공정을 통하여 총 두께가 50 ㎛ 정도인 다층 박막 ECD 모듈을 제조하였다. 길이가 80 mm 이상인 대면적의 ECD 모듈을 제조하기 위하여 스퍼터링, 바코팅, 열압축 공정을 최적화하였다. 보통 상태에서 54 % 수준의 투과율을 보였으나 DC 3.5 V의 전압을 인가했을 때 24 %까지 떨어졌으며 색 변화는 육안으로도 확인할 수 있었다. 가역적인 색 변화에 의해 외부 태양광을 선택적으로 차단할 수 있으며 냉난방에 필요한 에너지 저감 측면에서 효과적일 것으로 예상된다.

PAN-LIClO$_4$ 계 고분자전해질 EC창의 열화 기구에 관한 연구 (A Study on the degradation mechanism of PAN-LiCLO$_4$ Polymer Electrolyte EC windows)

  • 김용혁;김형선;조원일;조병원;윤경석;박인철
    • 한국표면공학회지
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    • 제30권4호
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    • pp.223-230
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    • 1997
  • Tungsten oxide and nickel oxide thin films were deposited onto ITO(Indium Tin Oxide) transparent glass by the E-beam evaporation and were used as a cathode and an anode for the EC(Electrochromic) smart window, respectively. Stoichiometric structures of the deposited films were investigated by the implementation of XPS(X-ray Photoelectron Spectroscopy) analysis and the results were $WO_{2.42}$ and $NiO_{0.44}$. This oxygen deficincy might affect affect the transparency of the thin films. The electrolyte for the EC smart windows was PAN-$LiCIO_4$ conducting polymer. EC(Ethylene Carbonate)and PC(Propylene Carbonate) were added as plasticizer to enhance ion conductivity. When the weight ratio of the EC : PC was 3 : 1, transmission difference and cycle life performance were tested. Polymer EC windows showed 40% $\Delta$T at 1.5V operating volage for 3,200 cycles. Structural degradation was observed by the SIMS(Secondary Ion Mass Spectroscopy) analysis and it was confirmed that structural degradation of polymer caused by the solvent evaporation was the main cause to degrade EC smart windows.

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솔-젤 스핀 코팅에 의해 증착된 텅스텐 산화물 박막의 반응 온도에 따른 전기변색특성 연구 (The electrochromic properties of tungsten oxide thin films coated by a sol-gel spin coating under different reactive temperature)

  • 심희상;나윤채;조인화;성영은
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2003년도 추계학술발표강연 및 논문개요집
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    • pp.128-128
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    • 2003
  • Electrochromism (EC) is defined as a phenomenon in which a change in color takes place in the presence of an applied voltage. Because of their low power consumption, high coloration efficiency, EC devices have a variety of potential applications in smart windows, mirror, and optical switching devices. An EC devices generally consist of a transparent conducting layer, electrochromic cathodic and anodic coloring materials and an ion conducting electrolyte. EC has been widely studied in transition metal oxides(e.g., WO$_3$, NiO, V$_2$O$\sub$5/) Among these materials, WO$_3$ is a most interesting material for cathodic coloration materials due to its lush coloration efficiency (CE), large dynamic range, cyclic reversibility, and low cost material. WO$_3$ films have been prepared by a variety of methods including vacuum evaporation, chemical vapor deposition, electrodeposition process, sol-gel synthesis, sputtering, and laser ablation. Sol-gel process is widely used for oxide film at low temperature in atmosphere and requires lower capital investment to deposit large area coating compared to vacuum deposition process.

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에너지 절약 스마트윈도우용 전기변색 재료의 개발 (The Development of Electrochromic Materials for Energy Saving Smart Windows.)

  • 조봉희;김영호
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1994년도 하계학술대회 논문집 C
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    • pp.1308-1310
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    • 1994
  • The electrochromism of $WO_3$ and $V_2O_5$ thin films have been studied. The $WO_3$ thin film is found to be cathodic coloration material and the coloration efficiency of this film is close to $60 [cm^2/C]$ in the near infrared region. The $V_2O_5$ thin film exhibits cathodic coloration in tile near infrared and anodic coloration in the blue and near UV region. The cathodic coloration in the $450{\sim}1100 nm$ wavelength range is relatively weak with a maximum coloration efficiency of $6 [cm^2/C]$).

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TEMPOL 첨가제 적용에 의한 광감응형 전기변색 소자 탈색성능 향상 (Improvement of Bleaching Performance of Photosensitive Electrochromic Device by the Additive of TEMPOL)

  • 송승한;박희성;조철희;홍성준;한치환
    • 대한화학회지
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    • 제66권3호
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    • pp.209-217
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    • 2022
  • 본 연구그룹에서는 투명 전도성 기판이 필요 없는 광감응형 전기변색 소자를 개발하였다. 이전의 연구에서 백금 촉매 적용에 의한 빠른 착색 및 탈색을 확인하였고, 저온소성형 WO3졸과 TiO2 졸을 적용하여 플렉시블 필름형 소자를 구현하였으나, 이러한 소자가 4~5 시간 동안 태양광에 노출될 경우 과착색 되어 암막상태에서도 탈색이 되지 않는 현상을 확인하였다. 본 연구에서는 이러한 과착색 현상을 해결하기 위하여 광감응형 전기변색 소자의 전해질에(4-Hydroxy-2,2,6,6-tetramethylpiperidin-1-yl)oxyl (TEMPOL)을 첨가하였다. TEMPOL을 첨가제로 사용한 광감응형 전기변색 소자의 경우 4시간 이상 햇빛에 노출되어도 과착색이 되지 않고, 가역성이 크게 향상되는 것을 확인하였다. 다양한 농도의 TEMPOL을 적용하여 가시광 투과율 변화 및 착/탈색 속도를 비교하였고, 에너지 레벨 관점에서 가능한 TEMPOL의 과착색 방지 메커니즘을 제시하였다.

전기방사법과 이원화 열처리 공정을 통한 은 나노섬유의 합성 및 투명전극으로의 응용 (Synthesis of Silver Nanofibers Via an Electrospinning Process and Two-Step Sequential Thermal Treatment and Their Application to Transparent Conductive Electrodes)

  • 이영인;좌용호
    • 한국재료학회지
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    • 제22권10호
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    • pp.562-568
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    • 2012
  • Metal nanowires can be coated on various substrates to create transparent conducting films that can potentially replace the dominant transparent conductor, indium tin oxide, in displays, solar cells, organic light-emitting diodes, and electrochromic windows. One issue with these metal nanowire based transparent conductive films is that the resistance between the nanowires is still high because of their low aspect ratio. Here, we demonstrate high-performance transparent conductive films with silver nanofiber networks synthesized by a low-cost and scalable electrospinning process followed by two-step sequential thermal treatments. First, the PVP/$AgNO_3$ precursor nanofibers, which have an average diameter of 208 nm and are several thousands of micrometers in length, were synthesized by the electrospinning process. The thermal behavior and the phase and morphology evolution in the thermal treatment processes were systematically investigated to determine the thermal treatment atmosphere and temperature. PVP/$AgNO_3$ nanofibers were transformed stepwise into PVP/Ag and Ag nanofibers by two-step sequential thermal treatments (i.e., $150^{\circ}C$ in $H_2$ for 0.5 h and $300^{\circ}C$ in Ar for 3 h); however, the fibrous shape was perfectly maintained. The silver nanofibers have ultrahigh aspect ratios of up to 10000 and a small average diameter of 142 nm; they also have fused crossing points with ultra-low junction resistances, which result in high transmittance at low sheet resistance.

ZnO nanostructures for e-paper and field emission display applications

  • Sun, X.W.
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2008년도 International Meeting on Information Display
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    • pp.993-994
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    • 2008
  • Electrochromic (EC) devices are capable of reversibly changing their optical properties upon charge injection and extraction induced by the external voltage. The characteristics of the EC device, such as low power consumption, high coloration efficiency, and memory effects under open circuit status, make them suitable for use in a variety of applications including smart windows and electronic papers. Coloration due to reduction or oxidation of redox chromophores can be used for EC devices (e-paper), but the switching time is slow (second level). Recently, with increasing demand for the low cost, lightweight flat panel display with paper-like readability (electronic paper), an EC display technology based on dye-modified $TiO_2$ nanoparticle electrode was developed. A well known organic dye molecule, viologen, was adsorbed on the surface of a mesoporous $TiO_2$ nanoparticle film to form the EC electrode. On the other hand, ZnO is a wide bandgap II-VI semiconductor which has been applied in many fields such as UV lasers, field effect transistors and transparent conductors. The bandgap of the bulk ZnO is about 3.37 eV, which is close to that of the $TiO_2$ (3.4 eV). As a traditional transparent conductor, ZnO has excellent electron transport properties, even in ZnO nanoparticle films. In the past few years, one-dimension (1D) nanostructures of ZnO have attracted extensive research interest. In particular, 1D ZnO nanowires renders much better electron transportation capability by providing a direct conduction path for electron transport and greatly reducing the number of grain boundaries. These unique advantages make ZnO nanowires a promising matrix electrode for EC dye molecule loading. ZnO nanowires grow vertically from the substrate and form a dense array (Fig. 1). The ZnO nanowires show regular hexagonal cross section and the average diameter of the ZnO nanowires is about 100 nm. The cross-section image of the ZnO nanowires array (Fig. 1) indicates that the length of the ZnO nanowires is about $6\;{\mu}m$. From one on/off cycle of the ZnO EC cell (Fig. 2). We can see that, the switching time of a ZnO nanowire electrode EC cell with an active area of $1\;{\times}\;1\;cm^2$ is 170 ms and 142 ms for coloration and bleaching, respectively. The coloration and bleaching time is faster compared to the $TiO_2$ mesoporous EC devices with both coloration and bleaching time of about 250 ms for a device with an active area of $2.5\;cm^2$. With further optimization, it is possible that the response time can reach ten(s) of millisecond, i.e. capable of displaying video. Fig. 3 shows a prototype with two different transmittance states. It can be seen that good contrast was obtained. The retention was at least a few hours for these prototypes. Being an oxide, ZnO is oxidation resistant, i.e. it is more durable for field emission cathode. ZnO nanotetropods were also applied to realize the first prototype triode field emission device, making use of scattered surface-conduction electrons for field emission (Fig. 4). The device has a high efficiency (field emitted electron to total electron ratio) of about 60%. With this high efficiency, we were able to fabricate some prototype displays (Fig. 5 showing some alphanumerical symbols). ZnO tetrapods have four legs, which guarantees that there is one leg always pointing upward, even using screen printing method to fabricate the cathode.

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