• 제목/요약/키워드: Inverse opal $TiO_2$

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Preparation and Photoelectrochemical Behavior of Cu2O/TiO2 Inverse Opal Heterojunction Arrays

  • Kim, Hyun-Sik;Lee, Sang-Kwon;Kang, Soon-Hyung
    • 전기화학회지
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    • 제15권3호
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    • pp.149-153
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    • 2012
  • The $Cu_2O/TiO_2$ inverse opal heterojunction arrays were developed by electrochemical deposition of $Cu_2O$ nanoparticles on $TiO_2$ inverse opal arrays. The $Cu_2O$ nanoparticles completely filled the inner pores of $TiO_2$ inverse opal film (prepared by liquid phase deposition with an average thickness of 400 nm) and covered the entire area; exhibiting high crystalline properties of anatase and cubic phase from $TiO_2$ and $Cu_2O$, respectively. From asymmetric current-voltage profile, it was noticeable that a heterojunction was well formed for charge transport from $Cu_2O$ to $TiO_2$ film resulting from the enhanced charge separation yield. In addition, increased photocurrent of 0.19 $mA/cm^2$ (versus 0.08 $mA/cm^2$ under dark condition) was obtained at -0.35 V from the heterojunction structure in the 0.5M $Na_2SO_4$ solution.

염료감응형 태양전지로의 응용을 위한 얇은 TiO2가 코팅 된 WO3 역오팔 광전극의 개발 (Development of Ultra-Thin TiO2 Coated WO3 Inverse Opal Photoelectrode for Dye-Sensitized Solar Cells)

  • ;곽서의;이인호;김청수;이상권;강순형
    • 한국재료학회지
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    • 제29권8호
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    • pp.491-496
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    • 2019
  • In this study, we prepare pure $WO_3$ inverse opal(IO) film with a thickness of approximately $3{\mu}m$ by electrodeposition, and an ultra-thin $TiO_2$ layer having a thickness of 2 nm is deposited on $WO_3$ IO film by atomic layer deposition. Both sets of photoelectrochemical properties are evaluated after developing dye-sensitized solar cells(DSSCs). In addition, morphological, crystalline and optical properties of the developed films are evaluated through field-emission scanning electron microscopy(FE-SEM), High-resolution transmission electron microscopy(HR-TEM), X-ray diffraction(XRD) and UV/visible/infrared spectrophotometry. In particular, pure $WO_3$ IO based DSSCs show low $V_{OC}$, $J_{SC}$ and fill factor of 0.25 V, $0.89mA/cm^2$ and 18.9 %, achieving an efficiency of 0.04 %, whereas the $TiO_2/WO_3$ IO based DSSCs exhibit $V_{OC}$, $J_{SC}$ and fill factor of 0.57 V, $1.18mA/cm^2$ and 50.1 %, revealing an overall conversion efficiency of 0.34 %, probably attributable to the high dye adsorption and suppressed charge recombination reaction.

Design of $TiO_2$ electrode for DSSC

  • 이완인
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2009년도 제38회 동계학술대회 초록집
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    • pp.22-22
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    • 2010
  • 최근 염료감응형 태양전지(DSSC)는 광변환효율 측면에서 향상 가능성이 높으며, 전기화학적 반응을 바탕으로 하므로 생산단가가 낮아 차세대 태양전지로 관심을 모우고 있다. 염료감응형 태양전지에 있어서 주요 구성성분 중의 하나는 다공성 산화물 광전극 재료이다. 다양한 반도체 물질과 비교할 때 $TiO_2$는 전도대의 위치와 전자이동성 면에서 비교적 적합하며, 유기물과의 흡착성 및 안정성 측면에서 대단히 우수하다. 염료감응형 태양전지의 $TiO_2$ 광전극이 갖추어야 할 요건은 표면적이 넓어서 염료 흡착량이 많아야 하며, 전자전달 및 전해질 이동을 위한 효율적 구조이어야 한다. $TiO_2$ 광전극 제작을 위한 재료로서는 나노입자가 널리 이용되며, 입자의 크기는 20 nm 부근이 적합한 것으로 알려져 있다. 본 발표에서는 나노입자 외에 나노막대, 나노섬유, 나노튜브, inverse-opal 구조 등과 같이 지금까지 연구되고 있는 $TiO_2$ 나노구조 관련연구를 소개 한다. 한편으로 효율적 전극구조를 제작하려면 $TiO_2$ 나노구조 제어 외에도, 투명전극과 $TiO_2$ 전극과의 계면층(interfacial layer) 제어, 빛의 효율적 이용을 위한 산란층(scattering layer) 및 $TiO_2$ 전극에서 전해질로의 전자손실 억제를 위한 blocking layer 도입 등이 필요하다. 이에 대한 기본개념을 설명하고 다른 연구자의 연구결과를 소개한다. 본 연구실의 연구 결과인, 메조 포러스 구조, 다공성 속빈구 구조와 구형구조체를 합성하고 이를 염료감응형 태양전지에 응용한 내용을 소개한다. 다공성 속빈구의 경우, 산란층으로 대단히 우수한 결과를 나타내었고, 다공성 구형구조체는 광전극 주재료로 적합한 특성을 나타내었다. 즉, 다공성 구형구조체를 적용한 광전극은 표면적이 대단히 넓고 또한 효율적 동공구조가 형성되어 전해질 이동에도 매우 효율적이다.

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A New Strategy to Fabricate a Colloidal Array Templated $TiO_2$ Photoelectrode for Dye-sensitized Solar Cells

  • 이현정
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2011년도 춘계학술발표대회
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    • pp.8.1-8.1
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    • 2011
  • Nanocrystalline titanium dioxide ($TiO_2$) materials have been widely used as an electron collector in DSSC. This is required to have an extremely high porosity and surface area such that the dye can be sufficiently adsorbed and be electronically interconnected, resulting in the generation of a high photocurrent within cells. In particular, their geometrical structures and crystalline phase have been extensively investigated as important issues in improving its photovoltaic efficiency. In this study, we present a new strategy to fabricate a photoelectrode having a periodic structured $TiO_2$ film templated from 1D or 3D polystyrene (PS) microspheres array. Monodisperse PS spheres of various radiuses were used for colloidal array on FTO glasses and two types of photoelectrode structures with different $TiO_2$ materials were investigated respectively. One is the igloo-shaped electrode prepared by $TiO_2$ deposition by RF-sputtering onto 2D microsphere-templated substrates. At the interface between the film and substrate, there are voids formed by the decomposition of PS microspheres during the calcination step. These holes might be expected to play the predominant roles as scattering spherical voids to promote a light harvesting effect, a spacious structure for electrolytes with higher viscosity and effective paths for electron transfer. Additionally the nanocrystalline $TiO_2$ phase prepared by the RF-sputtering method was previously reported to improve the electron drift mobility within $TiO_2$ electrodes. This yields solar cells with a cell efficiency of 2.45% or more at AM 1.5 illumination, which is a very remarkable result, considering its $TiO_2$ electrode thickness (<2 ${\mu}m$). This study can be expanded to obtain higher cell efficiency by higher dye loading through the increase of surface area or multi-layered stacking. The other is the inverse opal photonic crystal electrode prepared by titania particles infusion within 3D colloidal arrays. To obtain the enlargement of ordered area and high quality of crystallinity, the synthesis of titania particles coated with a organic thin layer were applied instead of sol-gel process using the $TiO_2$ precursors. They were dispersed so well in most solvents without aggregates and infused successfully within colloidal array structures. This ordered mesoporous structure provides the large surface area leading to the enough adsorption of dye molecules and have an light harvesting effect due to the photonic band gap properties (back-and-forth reflection effects within structures). A major advantage of this colloidal array template method is that the pore size and its distribution within $TiO_2$ photoelectrodes are determined by those of latex beads, which can be controlled easily. These materials may have promising potentials for future applications of membrane, sensor and so on as well as solar cells.

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Nanostructured Photoelectrode Materials for Improving Light-Harvesting Properties in DSSCs

  • 정현석
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2011년도 춘계학술발표대회
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    • pp.7.2-7.2
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    • 2011
  • Photoelectrochemical solar cells such as dye-sensitized cells (DSSCs), which exhibit high performance and are cost-effective, provide an alternative to conventional p-n junction photovoltaic devices. However, the efficiency of such cells plateaus at 11~12%, in contrast to their theoretical value of 33%. The majority of research has focused on improving energy conversion efficiency of DSSC by controlling nanostructure and exploiting new materials in photoelectrode consisting of semiconducting oxide nanoparticles and a transparent conducting oxide electrode (TCO). In this presentation, we introduce monodisperesed TiO2 nanoparticles prepared by forced hydrolysis method and their superiority as photoelectrode materials was characterized with aids of optical and electrochemical analysis. Inverse opal-based scattering layers containing highly crystalline anatase nanoparticles are also introduced and their feasibility for use as bi-functional light scattering layer is discussed in terms of optical reflectance and charge generation properties as a function of optical wavelength.

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