SBIR Phase I:Low-Temperature Route to Cu(In,Ga)Se2 for Flexible Photovoltaics
SBIR Phase I:Low-Temperature Route to Cu(In,Ga)Se2 for Flexible Photovoltaics
批准号:
0340112
负责人:
Douglas Schulz
金额:
$0.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-01-01 至 2004-05-31
中文摘要
这个小型企业创新研究第一阶段项目为化合物半导体材料铜铟镓二硒化物(CIGS)的低温加工提供了一种新的方法。CIGS目前被用作某些薄膜多晶太阳能电池的太阳能吸收层,其效率达到了19%。虽然由于成本效益,显示器和光伏(PV)领域正在转向连续卷对卷制造,但卷对卷CIGS太阳能电池工艺目前提供了6%至8%的效率模块。这被认为是由于使用聚酰亚胺基板时需要较低的温度烧结而导致的CIGS吸收体层的微观结构限制。该项目的研究目标是证明使用低温处理步骤可以提高CIGS太阳能电池的转换效率。要做到这一点,小颗粒CIGS薄膜将受到有利于颗粒生长的条件,以产生大颗粒多晶半导体。温度将被仔细控制和优化,以确定该工艺是否可以实现经济的基材,如聚对苯二甲酸乙二醇酯。如果成功,这种方法将普遍适用于多晶金属硫化物电子材料,其中性能可能会随着晶界数量的减少而得到改善。该项目的商业应用是制造高效、柔性的太阳能电池半导体材料。该项目以CIGS太阳能电池为例,对半导体生长方法进行了可行性论证。假设低温处理导致形成大颗粒材料并提高太阳能转换效率,该工艺可以作为现有辊到辊CIGS制造设施的插件使用。在柔性和轻质衬底上开发15%效率的CIGS太阳能电池,将满足用于手机和笔记本电脑等便携式电子产品的高端太阳能电池产品的需求,这些产品的10年市场估计为50亿美元并不是不合理的。虽然现有的光伏技术可能达到便携式光伏的成本目标(即10美元/瓦),但由于组件的低比功率密度和灵活性,这些技术并不适用,因此为新兴的太阳能电池技术提供了重要的机会。对于这一消费类应用,通过使用便携式光伏所增加的价值是永远不“插入”电源系统充电的便利。除了CIGS太阳能电池外,这种低温生长方法还可以通过晶体管和/或热电的新途径,影响柔性电子和电子纺织品等新兴领域。
英文摘要
This Small Business Innovation Research Phase I project provides a new approach to low-temperature processing of a compound semiconductor material, copper indium gallium diselenide (CIGS). CIGS is presently being used as the solar absorber layer in some thin film polycrystalline solar cells with world-record efficiencies of 19%. While there is a move in the display and photovoltaic (PV) communities towards continuous roll-to-roll manufacturing owing to cost benefits, roll-to-roll CIGS solar cell processes currently give 6 to 8% efficient modules. This is thought to be due to microstructural limitations in the CIGS absorber layer as a consequence of lower temperature sintering required when using a polyimide substrate. The research objective of this project is to demonstrate improved conversion efficiencies for CIGS solar cells using a low-temperature processing step. To do this, small grain CIGS films will be subjected to conditions that favor grain growth yielding a large-grained polycrystalline semiconductor. Temperature will be carefully controlled and optimized to determine if this process might enable economical substrates such as polyethylene terephthalate. If successful, the approach would be generally applicable to polycrystalline metal chalcogenide electronic materials where performance improvements might be anticipated with a reduction in the number of grain boundaries. The commercial application of this project is in the manufacture of high efficiency, flexible, solar cell semiconductor material. This project allows a feasibility demonstration for a semiconductor growth methodology using CIGS solar cells as the first example. Assuming the low-temperature treatment results in the formation of large-grained materials and gives increased solar conversion efficiencies, the process could be utilized as a plug-in at an existing roll-to-roll CIGS manufacturing facility. The development of 15% efficient CIGS solar cells on flexible and lightweight substrates would address the needs of higher-end solar cell products used in portable electronics such as cell phones and laptops where a 10-year market estimate of $ 5 billion is not unreasonable. While existing PV technologies may meet the cost target for portable PV (i.e. $10/W) these are not applicable given the low-specific power density and inflexibility of the modules thus providing a significant opportunity for an emerging solar cell technology. For this consumer application, the value added through the use of portable PV is the convenience of never "plugging in" to recharge a power system. In addition to CIGS solar cells, this low-temperature growth approach could impact the emerging fields of flexible electronics and electronic textiles through new routes to transistors and/or thermo-electrics.
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