• 제목/요약/키워드: photoelectrochemical water-splitting cells

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광전기화학적 수소 발생 전지의 연구 개발 현황 (Photoelectrochemical Water-Splitting Cells for H2 Production)

  • 안광순
    • 한국진공학회지
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    • 제18권5호
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    • pp.331-336
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    • 2009
  • 본 고에서는 광전기화학적 수소 ($H_2$) 발생 전지의 연구 개발 현황을 소개한다. 이를 통해 water-splitting 전지의 기본 원리를 이해하고 기술적 문제점 및 국내외 연구 현황, 향후 개발 동향 등을 살펴본다.

염료감응형 광전기화학 물분해 전지용 Tri-branched tri-anchoring organic dye 개발 (Tri-branched tri-anchoring organic dye for Visible light-responsive dye-sensitized photoelectrochemical water-splitting cells)

  • 박정현;김재홍;안광순
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 춘계학술대회 초록집
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    • pp.87-87
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    • 2010
  • Photoelectrochemical (PEC) systems are promising methods of producing H2 gas using solar energy in an aqueous solution. The photoelectrochemical properties of numerous metal oxides have been studied. Among them, the PEC systems based on TiO2 have been extensively studied. However, the drawback of a PEC system with TiO2 is that only ultraviolet (UV) light can be absorbed because of its large band gap (3.2 - 3.4 eV). Two approaches have been introduced in order to use PEC cells in the visible light region. The first method includes doping impurities, such as nitrogen, into TiO2, and this technique has been extensively studied in an attempt to narrow the band gap. In comparison, research on the second method, which includes visible light water splitting in molecular photosystems, has been slow. Mallouk et al. recently developed electrochemical water-splitting cells using the Ru(II) complex as the visible light photosensitizer. the dye-sensitized PEC cell consisted of a dye-sensitized TiO2 layer, a Pt counter electrode, and an aqueous solution between them. Under a visible light (< 3 eV) illumination, only the dye molecule absorbed the light and became excited because TiO2 had the wide band gap. The light absorption of the dye was followed by the transfer of an electron from the excited state (S*) of the dye to the conduction band (CB) of TiO2 and its subsequent transfer to the transparent conducting oxide (TCO). The electrons moved through the wire to the Pt, where the water reduction (or H2 evolution) occurred. The oxidized dye molecules caused the water oxidation because their HOMO level was below the H2O/O2 level. Organic dyes have been developed as metal-free alternatives to the Ru(II) complexes because of their tunable optical and electronic properties and low-cost manufacturing. Recently, organic dye molecules containing multi-branched, multi-anchoring groups have received a great deal of interest. In this work, tri-branched tri-anchoring organic dyes (Dye 2) were designed and applied to visible light water-splitting cells based on dye-sensitized TiO2 electrodes. Dye 2 had a molecular structure containing one donor (D) and three acceptor (A) groups, and each ended with an anchoring functionality. In comparison, mono-anchoring dyes (Dye 1) were also synthesized. The PEC response of the Dye 2-sensitized TiO2 film was much better than the Dye 1-sensitized or unsensitized TiO2 films.

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태양광과 물로부터 수소생산을 위한 광전기화학전지의 CdSe/$TiO_2$ 전극 (CdSe/$TiO_2$ electrode of photoelectrochemical[PEC] cell for hydrogen production from water using solar energy)

  • 이은호;정광덕;주오심
    • 한국수소및신에너지학회논문집
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    • 제16권2호
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    • pp.130-135
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    • 2005
  • Cadmium selenide is one of the group IIb-VI compounds, which is the promising semiconductor material due to its wide range of technological applications in optoelectronic devices such as photoelectrochemical cells, solid state solar cells, thin film photoconductors etc. CdSe has optical band gap of 1.7-1.8eV and proper conduction band edge for water splitting. CdSe films are coated with small thickness(20-50nm) nanocrystalline $TiO_2$ film by electrodeposition or chemical bath deposition methods and PEC properties of CdSe and CdSe/$TiO_2$ sandwich structure are studied. The photoactivity of CdSe and CdSe/$TiO_2$ films deposited on titanium substrate is studied in aqueous electrolyte of 1M NaOH solution. Photocurrent and photovoltage obtained were of the order of 2-4 mA/$cm^2$ and 0.5V, respectively, under the intensity of illumination of 100 mW/$cm^2$.

Photoelectrochemical cells based on oxide semiconductors

  • 윤영대;백승기;김주성;김영빈;조형균
    • 한국표면공학회:학술대회논문집
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    • 한국표면공학회 2018년도 춘계학술대회 논문집
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    • pp.50.2-50.2
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    • 2018
  • The demand for steady and dependable power sources is very high in the field of sustainable energy because of the limited amount of fossil fuels reserves. Among several sustainable alternatives, solar energy may be the most efficient solution because it constitutes the largest renewable energy source. So far, the only practical way to store such large amounts of energy has been to use a chemical energy carrier likewise a fuel. In various solar energy to power conversion systems, the photoelectrochemical (PEC) splitting of water into hydrogen and oxygen by the direct use of solar energy is an ideal process. It is a renewable method of hydrogen production integrated with solar energy absorption and water electrolysis using a single photoelectrode. Previous studies on photoelectrode films for PEC water splitting cells have been mainly focused on synthesizing oxide semiconductors with wide band gaps, such as TiO2(3.2eV), WO3(2.8eV), and Fe2O3(2.3eV). Unfortunately, these pristine oxide photoanodes without any catalysts have relatively low photocurrent densities because of the inherent limitation of insufficient visible light absorption due to the wide bandgap. Specifically, there is a tradeoff between high photocurrent and photoelectrochemical corrosion behavior, which is representative of figures of meritf or PEC materials.

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Solution-Processed Metal Oxide Thin Film Nanostructures for Water Splitting Photoelectrodes: A Review

  • Lee, Mi Gyoung;Park, Jong Seong;Jang, Ho Won
    • 한국세라믹학회지
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    • 제55권3호
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    • pp.185-202
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    • 2018
  • Photoelectrochemical (PEC) cells can convert solar energy, the largest potential source of renewable energy, into hydrogen fuel which can be stored, transported, and used on demand. In terms of cost competitiveness compared with fossil fuels, however, both photocatalytic efficiency and cost-effectiveness must be achieved simultaneously. Improvement of cost-effective, scalable, versatile, and eco-friendly fabrication methods has emerged as an urgent mission for PEC cells, and solution-based fabrication methods could be capable of meeting these demands. Herein, we review recent challenges for various nanostructured oxide photoelectrodes fabricated by solution-based processes. Hematite, tungsten oxide, bismuth vanadate, titanium oxide, and copper oxides are the main oxides focused on, and various strategies have been attempted with respect to these photocatalyst materials. The effects of nanostructuring, heterojunctions, and co-catalyst loading on the surface are discussed. Our review introduces notable solution-based processes for water splitting photoelectrodes and gives an outlook on eco-friendly and cost-effective approaches to solar fuel generation and innovative artificial photosynthesis technologies.

양극 산화된 $TiO_2$ nanotube를 이용한 수소 생산 연구 (Hydrogen production by anodized $TiO_2$ nanotube under UV light irradiation)

  • 홍원성;박종혁;한귀영
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2008년도 춘계학술대회 논문집
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    • pp.495-498
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    • 2008
  • Photocatalytic water splitting into $H_2$ and $O_2$ using semiconductors has received much attention, especially for its potential application to direct production of $H_2$ for clean energy from water utilizing solar light energy. Since the report of Fujishima and Honda on the water splitting by photoelectrochemical cells, numerous different semiconducting materials have been used as photocatalysts for hydrogen generation from water. Among them, platinized titania significantly accelerates hydrogen production from water. For geometrical improvement of $TiO_2$ particle, porous $TiO_2$ structure was proposed and studied such as nanofiber, nanorod and nototubes. This research focuses on finding out the optimum temperature and electrolyte to produce $H_2$ by solar water splitting.

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원자층증착법을 이용한 수소 생성용 광전기화학 전극 소재 개발 동향 (Recent Developments in H2 Production Photoelectrochemical Electrode Materials by Atomic Layer Deposition)

  • 한정환
    • 한국분말재료학회지
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    • 제25권1호
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    • pp.60-68
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    • 2018
  • The design and fabrication of photoelectrochemical (PEC) electrodes for efficient water splitting is important for developing a sustainable hydrogen evolution system. Among various development approaches for PEC electrodes, the chemical vapor deposition method of atomic layer deposition (ALD), based on self-limiting surface reactions, has attracted attention because it allows precise thickness and composition control as well as conformal coating on various substrates. In this study, recent research progress in improving PEC performance using ALD coating methods is discussed, including 3D and heterojunction-structured PEC electrodes, ALD coatings of noble metals, and the use of sulfide materials as co-catalysts. The enhanced long-term stability of PEC cells by ALD-deposited protecting layers is also reviewed. ALD provides multiple routes to develop improved hydrogen evolution PEC cells.

태양에너지를 이용한 수소제조 (Hydrogen Production by Water Splitting with Solar Energy)

  • 이태규
    • 에너지공학
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    • 제15권2호
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    • pp.96-106
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    • 2006
  • 다양한 수소에너지의 생산방법 중에서 진정으로 청정하고 지속가능한 유일한 기술이 물로부터 수소를 획득하는 태양-수소제조 시스템이다. 태양에너지를 활용한 물로부터 수소생산 연구는 1979년 일본 동경대학의 Honda와 Fujishima 교수의 광전기화학적 방법이 성공적으로 제시된 이래로 매우 많은 연구가 진행되어 오고 있다. 이러한 관심은 가시광 광촉매 제조, 광전기화학전지 등의 개발을 유발하였으며, 융합기술의 하나인 바이오-광촉매 복합시스템 구성 등의 연구를 도출시켰다. 본 고에서는 이들 태양의 광에너지를 직접 활용한 물분해 수소생산 기술을 소개하였으나 태양열을 이용한 수소 제조기술은 포함시키지 않았다.

전이금속 디칼코제나이드 나노촉매를 이용한 태양광 흡수 광화학적 물분해 연구 (Transition Metal Dichalcogenide Nanocatalyst for Solar-Driven Photoelectrochemical Water Splitting)

  • 유지선;차은희;박정희;임수아
    • 전기화학회지
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    • 제23권2호
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    • pp.25-38
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    • 2020
  • 태양광 흡수 물분해는 화석연료 대체 에너지원으로 떠오르는 수소에너지를 생산할 수 있는 가장 유망한 방법이다. 현재 전이 금속 디칼코제나이드 (transition dichalcogenide, TMD)는 물분해 촉매 특성이 뛰어난 물질로 많은 관심을 끌고 있다. 본 연구에서는 실리콘 (Si) 나노선 어레이 전극 표면에 대표적 TMD 물질인 4-6족의 이황화 몰리브덴 (MoS2), 이셀렌화 몰리브덴(MoSe2), 이황화 텅스텐 (WS2), 이셀렌화 텅스텐 (WSe2) 나노시트 합성할 수 있는 방법을 개발하였다. Si나노선 전극을 금속 이온 용액으로 코팅하고, 황 또는 셀레늄의 화학 기상 증착법(chemical vapor deposition)을 이용하는 것이다. 이 방법으로 TMD 나노시트를 약 20 nm 두께로 균일하게 합성하였다. p형 Si-TMD 나노선 광전극으로 구성된 광화학전지는 태양광 AM1.5G, 0.5 M H2SO4 전해질에서 개시 전위 0.2 V를 가지며 0 V (vs. RHE)에서 20 mA cm-2 이상의 전류를 낼 수 있다. 수소 발생 양자효율은 90% 정도로 우수한 물분해 촉매 특성을 확인하였다. MoS2 및 MoSe2는 3시간 동안 90% 이상의 우수한 광전류 안전성을 보여주었으나, WS2 및 WSe2는 상대적으로 적은 80%였다. MoS2, MoSe2는 Si 나노선 표면에 균일한 시트 형태로 씌워졌지만, WS2, WSe2는 조각 형태로 붙었다. 따라서 Si 표면을 잘 보호하지 못하기 때문에 Si나노선이 더 잘 산화되어 안정성이 낮아지는 것으로 해석하였다. 본 연구결과는 TMD의 수소 발생 촉매 특성을 이해하는 데 크게 기여할 것으로 예상한다.

텅스텐산화물/금속기판의 광전극 특성 (Photoelectrochamical characteristics of $WO_3$ on metal substrate for hydrogen production)

  • 고근호;;서선희;이동윤;이원재
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2011년도 추계학술대회 초록집
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    • pp.99.2-99.2
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    • 2011
  • Transparent conducting oxides (TCOs) supported on glass are widely used as substrates in PEC studies for photovoltaic hydrogen generation applications However, high sheet resistane ($10{\sim}15{\Omega}/cm^2$) and fragileness of glass-supported TCO substrates are the obstacles to produce the large area PEC cells. Such internal sheet resistance is detrimental to efficient collection of photogenerated majority charge carriers at the photoactive material and electrolyte interface. Moreover, these TCO substrates are very expensive and consume about 40~60% cost of the devices. Hence, a low sheet resistance of the substrate is a key point in improving the performance of PEC devices. Metallic substrates coated with a photoactive material would be a good choice for efficient charge collection. Such metal substrates based photanodes are best candidate for large-scale phtoelectrochemical water splitting for hydrogen generation. In this study, we report the enhanced PEC performance of $WO_3$ film on metal(chemical etched, bare) substrate. It is proposed that interface between $WO_3$ and the metal substrate is responsible for efficient charge transfer and demonstrated significant improvement in the photoelectrochmical performance. X-ray diffration and FESEM suduies reveled that $WO_3$ films are monoclinic, porous, polycrystalline with average grain size of ~50nm. Photocurrent of $WO_3$ prepared on metal substrates was measured in 0.5M $H_2SO_4$ electroyte under simulated $100mW/cm^2$ illumination.

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