I101 perovskite Ink has been specially formulated in the Ossila laboratories to be deposited by spin coating. Our I101 perovskite ink is designed for air processing in low-humidity environments. Using a mixture of methyl ammonium iodide (MAI) and lead chloride (PbCl) dissolved in dimethyl formamide our I101 perovskite ink will convert to a methylammonium lead halide perovskite under heat. The final product is a methylammonium lead iodide perovskite with trace amounts of chlorine given by the formula CH3NH3PbI3-xClx. For information on the various applications of the mixed halide CH3NH3PbI3-xClx perovskite see our applications section.
The main use of CH3NH3PbI3-xClx is in the fabrication of solar cells, our I101 ink can be used in both standard and inverted architectures; and can achieve power conversion efficiency (PCE) values of over 13% (see our device performance section for more information). The ink specifications can be found below along with complete guides on the processing of perovskite inks for standard architecture and inverted architectures. Using our I101 recipe provided, 5ml of solution is capable of processing up to 160 substrates (1,280 devices using our 8-pixel substrate design).
Now selling bulk orders of 30ml with a 25% discount over our standard order sizes.
I101 is packaged as 10 individual vials containing 0.5 ml of solution capable of coating up to 160 substrates. I101 can also be bought in bulk (30 ml) with a 25% discount over our standard order sizes.
Perovskite Type | CH3NH3PbI3-xClx |
Precursor Materials | Methyl Ammonium Iodide (99.9%), Lead Chloride (99.999%) |
Precursor Ratio | 3:1 |
Solvent | Dimethyl Formamide (99.8%) |
Optical Bandgap | 1.56-1.59eV |
Energy Levels | Valence Band Minimum 5.4eV, Conduction Band Minimum 3.9eV |
Emission Peak | 770-780nm (PL); 755-770nm (EL) |
Standard Architecture PCE | 13.7% Peak; 13.0% ±0.25% Average |
Inverted Architecture PCE | 13.1% Peak; 11.9% ±0.50% Average |
Processing Conditions | Air processing; low humidity (20% to 35%) |
Packaging | 10x 0.5ml sealed amber vials; 3 x 10ml sealed amber vials |
The single biggest application of perovskite materials is for photovoltaic devices; perovskites fabricated from MAI:PbCl precursors have been used in several papers to achieve high power conversion efficiencies. The advantage of using MAI:PbCl as precursor materials is the ability to process in an ambient environment.
Due to the high photoluminescence quantum yield of perovskites at room temperature, the application of these materials in light-emitting diodes (LEDs) is of great interest. Devices made using MAI:PbCl precursors show strong emission in the near-infrared region at 755nm. Additionally, recent work has shown lasing within this material.
Due to the ability to process perovskites based upon MAI:PbCl precursors in air, the material opens up the possibility of applications in large-scale deposition techniques. Several different scalable techniques, such as slot-die coating and spray coating have been used to deposit this material.
Below is a condensed summary of our fabrication routine for standard architecture devices using our I101 ink.
For a complete step-by-step guide please see our full perovskite solar cells fabrication guide or our instructional video guide below.
Below is a condensed summary of our routine, which is also available to download as a PDF to enable you to print and laminate for use in the clean room.
Below is information on photovoltaic devices fabricated using our standard architecture and inverted architecture recipes for I101 inks. All scans were taken after 10 minutes under illumination of an AM1.5 source, using a voltage sweep from -1.2 V to 1.2 V then from 1.2 V to -1.2 V at a rate of 0.2 V.s-1; no bias soaking was performed on devices.
Architecture | Standard | Inverted | ||
Sweep Direction | Forward | Reverse | Forward | Reverse |
Power Conversion Efficiency (%) | 13.5 | 13.7 | 12.4 | 13.1 |
Short Circuit Current (mA.cm-2) | -20.8 | -20.8 | -18.8 | -18.8 |
Open Circuit Voltage (V) | 0.88 | 0.90 | 0.96 | 0.96 |
Fill Factor (%) | 73 | 73 | 69 | 72 |
To the best of our knowledge, the technical information provided here is accurate. However, Ossila assume no liability for the accuracy of this information. The values provided here are typical at the time of manufacture and may vary over time and from batch to batch.
Ossila was founded in 2009 by organic electronics research scientists with the aim of providing the components, equipment and materials to enable faster and smarter research and discovery. We have grown a lot since then and are proud to now supply our products to over 1000 different institutions in over 67 countries across the world.
Having spent many years both in industry and academia developing organic and thin film LEDs, photovoltaics and FETs, we know how long it takes to develop a reliable and efficient device fabrication and testing process. As such, we have developed packages of products and services to enable researchers to jump-start their organic electronics or materials research development program.
Our research scientists have significant experience in the processing of materials into LEDs, PVs and FETs, and amongst our team of physicists, chemists and engineers we have a huge collection of knowledge on thin film processing, electronics and characterisation. The vision behind Ossila is to share this experience with academic and industrial researchers alike and to make their research more efficient. By providing products and services that take the hard work out of the device fabrication process, and the equipment to enable accurate, rapid testing, we can free scientists to focus on what they do best - science.
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