Development of novel graphene based inks to replace toxic and scarce materials used in thin film photovoltaics
Development of novel graphene based inks to replace toxic and scarce materials used in thin film photovoltaics
批准号:
83213
负责人:
金额:
$12.54万
依托单位:
依托单位国家:
英国
项目类别:
Collaborative R&D
财政年份:
2020
资助国家:
英国
项目状态:
已结题
起止时间:
2020 至 --
中文摘要
随着全球范围内强制实施封锁,全球大流行导致能源需求大幅下降。在英国,由于封锁措施导致需求下降,电价较低,导致运营燃煤电厂越来越无利可图,导致自19世纪以来首次没有煤炭发电。幸运的是,在这段时间里,英国能够利用可再生能源发电。然而,在较贫穷的国家,新冠肺炎疫情突显了在获得现代、负担得起和可持续的能源方面存在的严重不平等。获得可靠能源是一条生命线,尤其是在新冠肺炎危机的背景下。这不仅对于预防和应对这一流行病至关重要,而且对于通过确保所有人都有一个更可持续和更有弹性的未来来加速复苏和重建更好地重建是至关重要的。该项目解决了生产负担得起的低碳能源的需求,通过开发关键的使能技术来加速新兴的太阳能电池,特别是第二代和第三代薄膜光伏(TFPV),从而保证供应安全。在当前最先进的(SOTA)第一代硅片光伏(SPV)之外,这些技术在降低成本和制造过程中的碳排放方面具有最大潜力。然而,挑战在于极大地提高(1)TFPV的效率和(2)TFPV的稳定性以与SPV竞争,以及(3)取代TFPV制造中使用的有毒和稀缺的稀土金属,这阻碍了它们对供应安全的贡献。该项目将通过开发一种新型的碳纳米结构来应对这一挑战,该结构具有吸收更广泛光谱的潜力,通过将金属TFPV的效率提高30%以上来展示对最先进技术的改进。这是为了克服制造效率更高的薄膜光伏(TFPV)、具有更高稳定性和更长产品寿命的挑战,以及通过使用可再生和丰富的材料来超越第一代硅片光伏(SPV)的挑战。TFPV使用比SPV更高效的制造工艺,但目前最先进的TFPV使用不可持续的材料(有毒或稀有),稳定性较差。该项目将寻求取代TFPV中使用的有毒或稀缺材料,以提供可用于TFPV有源层的有机、节能、可打印的太阳能油墨,为我们的能源需求提供灵活和可扩展的解决方案,使电力系统在面临危机时更具弹性,并提供机会开发真正的分布式能源系统,在将使用的地方或附近发电和存储电力。这将极大地提高可再生能源的市场渗透率,因为它能够将该技术集成到多个市场的一系列表面上。该项目是一个更广泛的计划的第一部分,该计划旨在提供一种新型半导体墨水,该墨水使用碳纳米结构来最大限度地将光转化为电能。TFPV原型阶段将在CPI的石墨烯、配方和可印刷电子中心开发,以在灵活、轻型的太阳能电池中提供阶梯式变化的性能。这承诺了低成本制造和快速扩大规模。
英文摘要
The global pandemic saw energy demands fall dramatically as lockdowns were enforced across the world. In the UK, low power prices amid decreased demand due to lockdown measures, made it increasingly unprofitable to run coal plants resulting in no electricity being generated from coal for the first time since the 1800s. Fortunately, during this time Britain was able to generate its power from renewable energy sources. However, in poorer countries, the COVID-19 pandemic has highlighted the deep inequalities in terms of access to modern, affordable and sustainable energy. Access to reliable energy is a lifeline, especially in the context of the COVID-19 crisis. It is essential not only for preventing and addressing the pandemic but also for accelerating the recovery and building back better by securing a more sustainable and resilient future for all.This project addresses the need of generating affordable, low carbon energy that guarantees security of supply by developing a key enabling technology to accelerate emerging solar cells, specifically 2nd and 3rd generation thin film photovoltaics (TFPV). These have the greatest potential to reduce cost and carbon emissions from the manufacturing process beyond the current State-of-the-Art (SOTA) first generation silicon-wafer photovoltaics (SPV). The challenge, however, is to vastly improve (1) the efficiency and (2) the stability of TFPV to compete with SPV and (3) replace toxic and scarce earth metals used in the manufacture of TFPV which prevent their contribution to security of supply.This project will address the challenge by developing a novel carbon nano-structure which has the potential to absorb a broader spectrum of light, to demonstrate an improvement on the state-of-the-art by increasing the efficiency of metallic TFPV beyond 30%. This is intended to overcome the challenge of manufacturing higher efficiency thin film photovoltaics (TFPV), with a higher stability for a longer product life and by using renewable and abundant materials to out-compete 1st generation silicon wafer photovoltaics (SPV). TFPV uses more efficient manufacturing processes than SPV however current State-of-the-art TFPV use unsustainable materials (toxic or scarce) and have poorer stability.This project will look to replace toxic or scarce materials used in TFPV to deliver organic, energy-efficient, printable solar inks that can be used in the active layer of TFPV, providing for flexible and scalable solutions to our energy needs, making the power system more resilient in the face of crisis and presenting the opportunity to develop a truly distributive energy system to generate and store power at or near where it will be used. This will vastly improve on the market penetration of renewable energy, due to the ability to integrate the technology onto an array of surfaces across multiple markets.This project is the first part of a wider programme to deliver a novel semi-conducting ink that uses the carbon nano-structures to maximise conversion of light to power. The TFPV prototype stages will be developed at CPI's Graphene, Formulation and Printable Electronics Centres to deliver a step change performance in flexible, lightweight solar cells. This promises low cost manufacturing with rapid scale-up.
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