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Colloidal Quantum Dot Solar Cells: Progressive Deposition Techniques and Future Prospects on Large-Area Fabrication

期刊

ADVANCED MATERIALS
卷 34, 期 17, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202107888

关键词

colloidal quantum dots; deposition technique; perovskites; scale-up; solar cells

资金

  1. China Postdoctoral Science Foundation [2020M680861]
  2. National Natural Science Foundation of China [52102266]
  3. Department of Science and Technology-Science and Engineering Research Board (DST-SERB), Government of India [SRG/2020/000258]
  4. CSIR-Indian Institute of Chemical Technology, Hyderabad
  5. U.S. Department of Energy (DOE) [DE-AC36-08GO28308]
  6. Center for Hybrid Organic Inorganic Semiconductors for Energy (CHOISE), an Energy Frontier Research Center - Office of Science, Office of Basic Energy Sciences within the U.S. Department of Energy (DOE)

向作者/读者索取更多资源

Colloidally grown nanosized semiconductors, especially colloidal quantum dots (QDs), have great potential as optoelectronic materials. These materials show excellent properties in solar photovoltaics and display technology, with low cost and high performance. This article explores the possibilities of different deposition techniques to bring QD-based solar cells to an industrial level, and discusses the challenges faced by perovskite QD solar cells in achieving large-area fabrication.
Colloidally grown nanosized semiconductors yield extremely high-quality optoelectronic materials. Many examples have pointed to near perfect photoluminescence quantum yields, allowing for technology-leading materials such as high purity color centers in display technology. Furthermore, because of high chemical yield, and improved understanding of the surfaces, these materials, particularly colloidal quantum dots (QDs) can also be ideal candidates for other optoelectronic applications. Given the urgent necessity toward carbon neutrality, electricity from solar photovoltaics will play a large role in the power generation sector. QDs are developed and shown dramatic improvements over the past 15 years as photoactive materials in photovoltaics with various innovative deposition properties which can lead to exceptionally low-cost and high-performance devices. Once the key issues related to charge transport in optically thick arrays are addressed, QD-based photovoltaic technology can become a better candidate for practical application. In this article, the authors show how the possibilities of different deposition techniques can bring QD-based solar cells to the industrial level and discuss the challenges for perovskite QD solar cells in particular, to achieve large-area fabrication for further advancing technology to solve pivotal energy and environmental issues.

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