• Title/Summary/Keyword: dye-sensitized solar cell

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패턴 된 기판 위에 형성된 메조포러스 $TiO_2$막 형성 기구 및 미세구조 연구

  • An, Heung-Bae;Nam, U-Hyeon;Lee, Jeong-Yong;Kim, Yeong-Heon
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.469-469
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    • 2011
  • 고효율 염료감응형 태양전지(DSSC, Dye-Sensitized Solar Cell)의 구현을 위해서 유용한 방법중 하나는 정렬된 기공 (pore)을 $TiO_2$막 내에 형성시키는 것이다. 메조포러스 (mesoporous) $TiO_2$막은 dip coating이나 spin coating과 같은 방법으로 주로 증착되고 있으며, P123이나 F127과 같은 amphiphilic triblock copolymer를 메조포러스 구조를 만들기 위한 뼈대로 사용하고 있다. 또한, 이렇게 생성된 구조에서 amphiphilic triblock copolymer는 열처리 공정을 통하여 쉽게 제거될 수 있다. 고효율 태양전지를 구현하는 또 다른 방법으로는 패턴 된 기판을 사용하는 것이다. 패턴 된 기판은 빛의 반사를 억제하여 흡수율을 높이는 역할을 한다. 그러나 패턴 된 기판 위에서 메조포러스 $TiO_2$막의 형성에 관한 연구는 부족한 실정이다. 본 연구에서는 spin coating 방법으로 패턴 된 Si (111) 기판 위에 메조포러스 $TiO_2$를 성장하고 그 미세구조를 분석하였다. 패턴 된 기판은 nanosphere lithography(NSL) 법으로 mask를 증착한 후 건식 식각 (dry etching) 공정을 통해서 제작되었으며, 마스크와 불순물 등 은 초음파 세척 등으로 제거되었다. 메조포러스 $TiO_2$막은 1-propanol, P123, titanium isopropoxide와 HCl을 섞어 만든 용액으로 1 cm${\times}$1 cm 기판 위에 3000 rpm과 4000 rpm으로 각각 증착하였으며, 5일 동안 4도에서 에이징한 후 350도에서 3시간 열처리하였다. 이렇게 형성한 메조포러스 막의 형상과 미세구조적 특성이 주사전자현미경(SEM, scanning electron microscope), X-선 회절(XRD, X-ray diffraction) 등을 이용하여 연구되었다. 특히, 증착 조건에 따른 메조포러스 $TiO_2$박막의 형성 기구에 관한 고찰이 진행되었다. 나아가, $TiO_2$박막과 패턴 사이에 형성되는 계면 구조에 관한 연구를 투과전자현미경을 이용하여 진행하였다.

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Photovoltaic Efficiency Characteristics of DSSC with Electroplated Pt/Ni Counter Electrode (백금/니켈 전기 도금 상대전극을 사용한 염료 감응형 태양전지 광전 변환 효율 특성)

  • Hwang, Ki Seob;Doh, Seok Joo;Ha, KiRyong
    • Applied Chemistry for Engineering
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    • v.22 no.1
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    • pp.98-103
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    • 2011
  • We prepared a counter electrode by electroplating Ni as underlayer and Pt as plating layer on the FTO glass to increase the efficiency of dye-sensitized solar cell (DSSC). We found an excellent adhesion between Ni underlayer and FTO glass when Ni underlayer was electroplated at $10mA/cm^2$ for 2 min on FTO glass. We observed Ni and Pt metal diffraction peaks by XRD analysis when Ni underlayer was electroplated at $10mA/cm^2$ for 2 min, and Pt layer was electroplated at $5mA/cm^2$ for 1 min on the Ni underlayer. Photovoltaic performance and impedance analysis of DSSCs fabricated with this counter electrode shows the highest efficiency of 5.6% and the lowest resistance of 75 ohm.

Preparation and characterization of Ga-doped TiO2 nanofibers by electrospinning (전기방사를 이용한 Ga이 첨가된 나노섬유의 제작 및 특성평가)

  • Song, Chan-Geun;Kang, Won Ho;Yoon, Jong-Won
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • v.22 no.6
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    • pp.274-278
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    • 2012
  • $TiO_2$ can be used optically and is applied on many areas such as gas sensor, solar cell and photocatalysis. Electrospun nanofibers have received great interest for development and utilization in some novel applications, such as chemical sensors, dye-sensitized solar cell and photo catalysis. In this study, pure $TiO_2$ and Ga-doped $TiO_2$ nanofibers synthesized by a modified electrospinning method. The Ga doped $TiO_2$ solution is prepared by mixing poly vinyl pyrrolidone, ethyl alcohol, and titanium (IV) isopropoxide. By electrospinning these sols, nanofibers were fabricated. These fibers are heat-treated at $800^{\circ}C$ in air. The prepared pure $TiO_2$ and Ga-doped $TiO_2$ nanofibers samples were characterized by X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), transmission electron microscopy (TEM) and Raman spectroscopy.

Preparationand Characterization of Rutile-anatase Hybrid TiO2 Thin Film by Hydrothermal Synthesis

  • Kwon, Soon Jin;Song, Hoon Sub;Im, Hyo Been;Nam, Jung Eun;Kang, Jin Kyu;Hwang, Taek Sung;Yi, Kwang Bok
    • Clean Technology
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    • v.20 no.3
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    • pp.306-313
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    • 2014
  • Nanoporous $TiO_2$ films are commonly used as working electrodes in dye-sensitized solar cells (DSSCs). So far, there have been attempts to synthesize films with various $TiO_2$ nanostructures to increase the power-conversion efficiency. In this work, vertically aligned rutile $TiO_2$ nanorods were grown on fluorinated tin oxide (FTO) glass by hydrothermal synthesis, followed by deposition of an anatase $TiO_2$ film. This new method of anatase $TiO_2$ growth avoided the use of a seed layer that is usually required in hydrothermal synthesis of $TiO_2$ electrodes. The dense anatase $TiO_2$ layer was designed to behave as the electron-generating layer, while the less dense rutile nanorods acted as electron-transfer pathwaysto the FTO glass. In order to facilitate the electron transfer, the rutile phase nanorods were treated with a $TiCl_4$ solution so that the nanorods were coated with the anatase $TiO_2$ film after heat treatment. Compared to the electrode consisting of only rutile $TiO_2$, the power-conversion efficiency of the rutile-anatase hybrid $TiO_2$ electrode was found to be much higher. The total thickness of the rutile-anatase hybrid $TiO_2$ structures were around $4.5-5.0{\mu}m$, and the highest power efficiency of the cell assembled with the structured $TiO_2$ electrode was around 3.94%.

Fabrication and Photocatalytic Activity of TiO2 Nanofibers Dispered with Silica Nanoparticles (SiO2 나노입자가 분산된 TiO2 나노섬유의 제작 및 광촉매 특성 분석)

  • Choi, Kwang-Il;Lee, Woohyoung;Beak, Su-Wung;Song, Jinho;Lee, Sukho;Lim, Cheolhyun
    • Korean Chemical Engineering Research
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    • v.52 no.5
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    • pp.667-671
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    • 2014
  • In this study, we suggest a facile method to control conditions of single component independently when preparing consisting two-component metal oxides nanofiber by simply dispersing nanoparticles in precursor solution. The well dispersed $SiO_2$ nanoparticles in $TiO_2$ nanofibers were successfully synthesized through a simple electrospinning process. The as-synthesized nanodfibers were investigated via FE-SEM, XRD and EDS for structural studies, furthermore, the analysis of UV-VIS and photocatalytic activity were carried out for demonstrate the effect of $SiO_2$ nanoparticles dispersed in $TiO_2$ nanofibers. As a result, $TiO_2$ nanofibres dispersed with $SiO_2$ nanoparticles have enhanced photocatalytic activity than that of $TiO_2$ nanofibres only. In this strategy, the introduction of $SiO_2$ nanoparticles in $TiO_2$ nanofibers were attribute to enlarge absorption in the visible region (380~440 nm). Additionally, $Br{\o}nsted$ acid sites generated in each metal oxide of Ti and Si increase OH radicals efficiently as well as it limit recombination loss by holding photogenerated electrons for high efficient photocatalytic activity.