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EAGER: Collaborative Research: Dye-anchored nanocatalysts for improved solar energy conversion efficiency

EAGER: Collaborative Research: Dye-anchored nanocatalysts for improved solar energy conversion efficiency
EAGER:合作研究:染料锚定纳米催化剂可提高太阳能转换效率
批准号:
1107278
负责人:
Elena Galoppini
金额:
$5.12万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-04-01 至 2013-03-31

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中文摘要
翻译
染料敏化太阳能电池是一种非常有前景的低成本太阳能发电技术。该器件有三个基本组件:沉积在透明导电玻璃电极上并涂有染料的宽禁带半导体(纳米二氧化钛)薄膜;镀铂对电极;以及包含碘/三碘氧化还原对的电解液。然而,电池效率一直受到限制,很大程度上是因为驱动关键的染料再生反应所需的高电化学过电位(约0.5V),在该反应中,碘还原结合到纳米二氧化钛上的氧化染料分子,生成三碘化合物和未带电的染料作为产物。康涅狄格大学斯托尔斯分校的亚历克斯·阿格里奥斯教授和新泽西州纽瓦克罗格斯大学的埃琳娜·加洛皮尼教授建议将催化铂纳米颗粒连接到固定在二氧化钛表面的染料分子上。他们假设,结合到染料分子上的铂可以催化染料再生,通过能量较低的中间体引导反应,并极大地降低氧化染料和碘化物之间所需的过电位。这项工作将利用催化来消除低成本染料敏化太阳能电池能量转换效率的长期限制。这项合作的急切提议包括进行初步合成的实验和验证主要假设的实验,以证明纳米催化剂提高DSSC太阳能转换效率的可能性。由于驱动电池的电化学过程中的能量损失,每个电子空穴对大约一半的电化学能量被损失。人们普遍认为,DSSC研究的下一个突破将是找回这种失去的能量。这项工作的意义将是现实的和基础的,分子锚定的纳米催化剂的概念在不同领域具有潜在的意义。
英文摘要
Dye-sensitized solar cells (DSSC) are a very promising technology for low-cost conversion of solar energy to electricity. The device has three essential components: a wide-bandgap semiconductor (nanocrystalline TiO2) film deposited on a transparent conducting glass electrode and coated with a dye; a platinized counterelectrode; and an electrolyte solution containing the iodide/triiodide redox couple. However, cell efficiencies have been limited due largely to the high electrochemical overpotential (about 0.5 V) needed to drive the critical dye regeneration reaction, where iodide reduces an oxidized dye molecule bound to a TiO2 nanoparticle, yielding triiodide and the uncharged dye as products. The PIs, Professors Alex Agrios of the University of Connecticut, Storrs, CT, and Elena Galoppini of Rutgers University, Newark, NJ, propose to attach catalytic Pt nanoparticles to the dye molecules anchored to the TiO2 surfaces. They hypothesize that Pt bound to the dye molecule can catalyze dye regeneration, routing the reaction through less energetic intermediates and greatly reducing the overpotential required between oxidized dye and iodide. This work will employ catalysis to remove a longstanding limitation on the energy conversion efficiency of low-cost dye-sensitized solar cells.This collaborative EAGER proposal covers experiments to carry out the initial syntheses and experiments to test the main hypothesis to demonstrate the possibility of nanocatalysts to improve DSSC solar energy conversion efficiency. About half of the electrochemical energy of each electron hole pair is lost due to energy losses in the electrochemical processes driving the cell. It is generally acknowledged that the next breakthrough in DSSC research will be the recovery of this lost energy. The significance of this work will be both practical and fundamental, with the concept of molecularly anchored nanocatalysts having potential implications in diverse fields.
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  • 项目类别:
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