Crystal Tandem Solar · Single-Crystal Perovskite Tandem Solar Cells For High Efficiency and Low Cost
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2017-01-01 → 2019-12-31
- EU contribution
- €269,858
- Participants
- 2
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Single-Crystal Perovskite Tandem Solar Cells For High Efficiency and Low Cost
Given the increasing energy demands of the world and the threat of carbon-dioxide driven global warming, it is increasingly apparent that there is an urgent need for an energy source that is abundant, doesn’t produce carbon dioxide, and can supply a large fraction of the world’s demands. A promising option for this is solar photovoltaics (PVs), devices converting photons directly to usable electrical power. Current state of the art crystalline silicon PV modules have power conversion efficiencies (PCEs) of above 20% and cost around 0.3-0.5 $/W. These modules are generally rated to operate for 25 years, with payback time for domestic use generally 5-10 years. This long-term financial consideration and initial expense limits uptake, meaning that in order to install PVs rapidly enough to limit the impending energy crisis, a new approach is needed. Panels must have a better power to cost ratio to reduce payback time. Solution-processed PVs have recently attracted significant interest for their potential to offer lower-cost processing, with organic photovoltaics, dye-sensitized solar cells and quantum dot solar cells showing promise in this area. However, with PCEs of 10-12%, they are still not cost-competitive with c-Si. More recently, hybrid organic-inorganic perovskites have attracted a great deal of interest. These materials are named for their ABX3 crystal structure, where A=Cs+, CH3NH3+, H2NCHNH3+, B=Pb2+, Sn2+, X=Cl-, Br-, I-. These materials are cheap, earth-abundant, solution-processable semiconductors and ideal for incorporation into photovoltaics. Their high material quality and versatility has enabled a meteoric rise in their efficiency, making them the fastest developing photovoltaic technology yet and a prime candidate for a low-cost, high efficiency photovoltaic technology. In less than four years of intensive research, lab-scale device efficiencies are reaching above 20% PCE (the maximum theoretical PCE from these devices is 28%), and rough estimates indicate that they could generate power at ~0.2$/W. However, even this is not sufficiently superior to the low costs of Si to warrant the expenses of scaling up fabrication. Possibly, the most promising incarnation of the perovskite solar cell is as a ‘tandem’ device, employing two materials absorbing different parts of the solar spectrum to achieve even higher efficiencies while keeping costs low. Theoretical predictions show that such tandem devices could achieve up to 36% PCE, making them ultimately more promising than the single-junction perovskite devices. Tandem perovskite devices so far have been limited by the quality of the perovskite films – they contain lots of small crystal grains, and the grain boundaries between these are thought to be detrimental to charge transport, limiting performance. This project aims to produce high efficiency, low cost tandem perovskite devices by fabricating and characterizing single-crystal thin films of perovskites and stacking them in tandem architectures. This will be done by using solution chemistry known from nanocrystal research to control crystal growth and will eliminate the problem of grain boundaries within the devices, allowing very high performance devices that can be fabricated at low costs, providing a potential solution to help mitigate the impact of climate change.
Data: CORDIS, © European Union
Project objective
This project aims to produce next-generation solar cells surpassing 30% power conversion efficiency at low cost, a much needed cheap renewable energy source. Initial rapid progress in the field of perovskite solar cells has slowed; efficiencies are not high enough to make them commercially attractive. Therefore, a step change is needed in how these devices are made. All perovskite solar cells so far are polycrystalline. The project will focus on solution-based epitaxial growth of single crystal perovskites, providing novel high quality thin films. These crystals will be incorporated into Si-based tandem solar cells, to form highly efficient single-crystal-on-single-crystal devices. Fabricating on top of an existing technology offers rapid commercialisation and significantly better power to cost ratio than existing technologies.The project will comprise an outgoing phase in Prof. Michael McGehee’s group at Stanford University, whose unrivalled expertise in fabrication of hybrid tandem solar cells will be combined with the researcher’s skills to fabricate single crystal perovskite-on-Si solar cells. The expertise obtained will then be transferred to the group of Prof. Sir Richard Friend at the University of Cambridge, experts in photophysics. The physical mechanisms occurring in these devices will be elucidated via ultrafast spectroscopy. Based on these findings, devices will be further improved to attain the highest efficiencies.The project addresses Horizon 2020's goals on clean and sustainable energy. The researcher is uniquely suited for this ambitious project, having strong expertise in perovskite and nanocrystal fabrication. It represents a novel combination of the fields of crystal growth, state-of-the-art device manufacture, and device spectroscopy. It will create strong links between the groups and ensure transfer of expertise into the European community. There is strong potential for intellectual property generation and industrial involvement.
Original text from CORDIS.
Participants
- THE CHANCELLOR MASTERS AND SCHOLARS OF THE UNIVERSITY OF CAMBRIDGE · CAMBRIDGECoordinatorUnited Kingdom
- UNIVERSITY OF WASHINGTON · Seattle WaUnited States
Links
Data: CORDIS, © European Union
