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Close Cart summary. Printable carbon pastes for the build up of highly conductive electrodes. Pastes for the printing of silver contacts. Ruthenium sensitizers for Dye Solar Cells and other photochemical experiments. Emerging alternatives to ruthenium-based dyes with purely organic molecules. Additives for performance enhancements of common Dye Solar Cell sensitizers. Non-volatile electrolyte formulations based on ionic liquids for Dye Solar Cells. Iodine-free ionic liquids for the preparation of eutectic melts in non-volatile electrolytes. Transparent and conductive glass substrates coated with FTO. Filters and other coatings for solar cell electrodes. A selection of glass substrates without any coating. Get up and running in minutes in the exciting field of Perovskite Solar Cell research and development with our dedicated kits. The Dye Solar Cell Test Kit allows experienced users to easily build many high performance test cells with a high degree of reproducibility. The Education Cell Kit is specifically designed to fit in educational budgets. The kit for the making of larger demonstrative Dye Solar Cells. Assembled laboratory Solar Cells. The solar cell in tune with your product style: choices of colors and transparencies, plus customizable shape and pattern. The serially integrated module from Solaronix: can be lit on both faces, and has a tunable transparency. Electric loads and accessories for our solar cell samples. Cell tester that combine the functions of Solar Simulator and Light Soaker in one unit designed for laboratories and universities. Cells tester units that combine the functions of solar simulator and light soaker. Available from 20 x 20 cm to x cm of active surface. Custom large-area Solar Simulator, Light-soaker and Thermal tester under light load combined in one equipment. Containers for the staining of electrodes. Variety of tools for the manipulation of Dye Solar Cell components. Would you like to compare some of our products? Simply click on Add to compare from a product list or page, and then press Compare. Solaronix Materials PDF, 2. Need more control over the search? Try our advanced search. Maximum Search query length is Your query was cut. Maximum words count is High performances in a small cabinet. Accept up to 8'' silicon wafer, compatible with all solar cell technologies, like Perovskite, DSSC, Si wafer, Organic, Tandem, multi-junctions, and many more A versatile formulation for the preparation of opaque titanium dioxide layers of Dye Solar Cell electrodes by doctor-blading. Voltage converter from V to either 1. A perfect asset for solar modules. All Rights Reserved. Made by Cross Agency. Online Shop Welcome dear visitor, you are not logged in Log In. About Solaronix Terms and Conditions Contacts. My Cart 0 cart. Close Cart summary You have no items in your shopping cart. View Cart. Carbon Pastes Printable carbon pastes for the build up of highly conductive electrodes. Silver Pastes Pastes for the printing of silver contacts. Organic Dyes Emerging alternatives to ruthenium-based dyes with purely organic molecules. Mixed Salts Iodine-free ionic liquids for the preparation of eutectic melts in non-volatile electrolytes. Filters and Coatings Filters and other coatings for solar cell electrodes. Bare Glass Substrates A selection of glass substrates without any coating. Perovskite Solar Cell Kits Get up and running in minutes in the exciting field of Perovskite Solar Cell research and development with our dedicated kits. Laboratory Cells Assembled laboratory Solar Cells. Demonstration Cells The solar cell in tune with your product style: choices of colors and transparencies, plus customizable shape and pattern. Demonstration Modules The serially integrated module from Solaronix: can be lit on both faces, and has a tunable transparency. Accessories Electric loads and accessories for our solar cell samples. Small Units Cell tester that combine the functions of Solar Simulator and Light Soaker in one unit designed for laboratories and universities. Medium Units Cells tester units that combine the functions of solar simulator and light soaker. Large Units Custom large-area Solar Simulator, Light-soaker and Thermal tester under light load combined in one equipment. Staining Boxes Containers for the staining of electrodes. Tools Variety of tools for the manipulation of Dye Solar Cell components. Compare Products. Sign Up for Our Newsletter:. Add to Cart Add to Compare. Classic Perovskite Solar Cell Kits Benefit from high quality electrodes specifically designed for experimenting with planar or mesoporous classic Perovskite Solar Cells. Learn More Add to Compare. Glass Carrier, for 10 cm plates High-Density Polyethylene carrier tray for 10 cm glass plates. Mosalyte TDE-S The ultimate non-volatile electrolyte formulated with sulfolane and ionic liquid mix for best in breed performances and stability in outdoor applications. Holder clip. Measurement Sample Holder Sample holder is suitable for laboratory solar cells made such as Solaronix' laboratory perovskite solar cells, and cells made from our Monolithic Perovskite Solar Cell Kit. TCO 1. Back glass 85x85mm Back glass 85x85mm for 10x10 cm monolithic perovskite module V4 1. Gasket 85x85mm Gasket 85x85 mm Meltonix 2 mm width for 10x10 cm monolithic perovskite module V4. For the logo, we need the pdf file of the picture to be put into the cell. High performances in a small volume. Our proven design including our Lumixo light engines in an array is ready to scale up or down to any size from 1' x 1' mm to 4' x 4' mm. Monolithic Perovskite Solar Cell Precursor Solution Methylammonium lead iodide perovskite precursor solution for the impregnation of monolithic perovskite solar cells. Ti-Nanoxide D A versatile formulation for the preparation of opaque titanium dioxide layers of Dye Solar Cell electrodes by doctor-blading. Mosalyte PMI The classic ionic liquid electrolyte with an increased iodide concentration. Platisol T The liquid paint for the deposition of a catalytic and quasi-transparent layer of activated platinum. Amosil 4 The dispersed two component sealing system for a supplementary sealing of Dye Solar Cells. Mosalyte PMI A non-volatile electrolyte based on ionic liquid, featuring a negligible vapor pressure and a high temperature compatibility. Iodolyte Z Our ultimate iodide electrolyte for long term performance with the highest concentration of mM of tri-iodide. Iodolyte Z Our ultimate iodide electrolyte for long term performance with an intermediate concentration of mM of tri-iodide. Ruthenizer The reference Ruthenium dye for the sensitization titanium dioxide in Dye Solar Cells, know as N3 in the litterature. Also known as N in the literature. Ruthenizer PF6 The ruthenium complex to be used as a fluorescent probe, or as a sensitizer of wide band-gap oxide semiconductors. Ruthenizer The sensitizer for photo-electrochemical experiments, such as water splitting, or oxide semiconductor sensitization. Ruthenizer The analogue to Ruthenizer with a favorable stability, suited for the study of the photo-degradation of ruthenium dyes. Chenodeoxycholic Acid The staining additive to give an extra boost to your Dye Solar Cells together with a sensitizing dye. Also called 'black dye', or N Iodolyte Z The ultimate iodide electrolyte for long term performance, prepared in methoxypropionitrile, with a 50 mM redox concentration. Aluminoborosilicate Glass, 1. Connection Cables Pair of 30 cm red and black cables fitted with 2 mm test connectors. Crocodile Clips Pair of red and black clips for 2 mm test leads. Mosalyte TDE The high performance non-volatile electrolyte, formulated with a low viscosity mix of ionic liquids for best charge transport. Small Hot Press, V Small hot press for the sealing of laboratory solar cells. Titania Coating Service Titanium dioxide nanoparticles deposition service. Platinum Coating Service Catalytic and transparent platinum coating deposition service. Our proven design including our Lumixo light engines in an array is ready to scale up or down to any size from 1. Blocks Film Cutting Service Programmable film cutting service for the fabrication of customized sealing gaskets and adhesive masks. Small Staining Box Container in polypropylene for the staining of electrodes up to 2. Plastic Spatulas, 5 pcs. Set of 5 polypropylene spatulas for the handling of pastes. Plastic Tweezers, 10 pcs. Affordable set of 10 polypropylene, metal-free tweezers. Heat Resistant Tweezers Non-metallic and temperature-proof tweezer for a ubiquitous handling of electrodes. Plastic Pipettes Sets of disposable polyethylene pipettes. Disposable Spatulas Sets of disposable spatulas.
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Researchers have re-examined the last meal of the famous Tollund Man bog body, consumed shortly before he died around BC. The analysis reveals that he likely ate an ordinary Iron Age meal of porridge and fish, consumed hours before his death. New analyzes of the Tollund Man bog body's last meal - where Jan Enghild and Carsten Scavenius from the Department of Molecular Biology and Genetics at Aarhus University, have contributed with protein analyzes - reveal that the Tollund Man bog body's last meal also contained fish and not just porridge. Archaeologists have been able to reconstruct the last meal of Tollund Man in greater detail than ever before. He appears to have been a human sacrifice deposited in a Danish bog 2, years-ago. But despite this extraordinary treatment, his last meal was relatively ordinary. Nielsen from the Museum Silkeborg, lead author of the new study. Their research, published in the journal Antiquity, allowed them to reconstruct this Iron Age meal — right down to how it was prepared. They also discovered that the meal included fish and the porridge was cooked in a clay pot, likely using water from a lake or bog, all providing an incredible snapshot of Iron Age life. Fish is also known to have been eaten in this period, although it did not make up a substantial part of the diet. However, the meal also included seeds from pale persicaria, which are typically removed as grain is cleaned during threshing. In this case, the resulting threshing waste with these seeds, sand, and other detritus, seems to have been used as an actual ingredient in the porridge. This research also identified that Tollund Man was suffering from several parasites at the time of his death, including whipworm, tapeworm and mawworm. These provide clues about what health and sanitation were like in the Iron Age, as these were likely caused by the consumption of undercooked meat and contaminated food or water. The researchers hope the techniques refined here can be used to re-examine other bog bodies, shedding more light on diet, ritual, and health in the past. Since knowledge of plant macrofossils and the methods for analysing gut contents have improved since , a team of researchers decided to re-investigate the gut contents of Tollund Man in The main aim of the new study was to quantify the ingredients of his last meal and thereby gain a more detailed insight into what an Iron Age meal could look like. The researchers also wanted to search for unusual ingredients that perhaps could be related to rituals in the sacrifice and explore whether the presence of weed seeds in the meal could be a sign of a food shortage. Additionally, they wanted to look for evidence of intestinal parasites that could provide insights into health and sanitation in the Iron Age. A few millilitres of material from the large intestine were taken for analyses of macrofossils, pollen, Non-Pollen Palynomorphs microscopic plant fragments, spores, parasite eggs, etc. This is the most detailed study that has been conducted on the gut contents of a bog body and was so detailed that researchers could recreate the recipe of the last meal. The study concluded that Tollund Man had eaten a barley porridge to which some seeds of pale persicaria and flax were added. In total g barley grains were used, 29g seeds of pale persicaria and 16g flax seeds. Fish probably were also part of the meal as indicated by the protein analysis. Barley and flax were cultivated in the Iron Age. However, Pale persicaria grew as a weed in the fields and was harvested together with the grain. When cleaning the grain through threshing and sieving, the small seeds from weed species were left on the ground. Afterwards, the seeds must have been gathered and used in cooking. This also fits with the presence of sand and charcoal, which probably were accidentally swept up from the ground. The use of threshing waste containing pale persicaria in the porridge could be connected to the human sacrifice ritual, or it might have been part of ordinary Iron Age cooking. Pale persicaria is rich in nutrients — althogether the plant ingredients alone provided nearly half of the daily caloric intake for a person with limited physical activity. As such, there is no sign of a severe food shortage that could explain why Tollund Man was sacrificed. This mystery remains unsolved. Link to the research article in Antiquity :. Nina H. E-mail: peter. E-mail: csss mbg. Martin N. E-mail: martin. News and events News Events Calendar Archive Vacancies Research reveals recipe of Tollund man's last meal Researchers have re-examined the last meal of the famous Tollund Man bog body, consumed shortly before he died around BC. The Tollund Man bog body. Museum Silkeborg. Altogether, it was a nutritious meal that would have provided half the calories for the day. The new study Since knowledge of plant macrofossils and the methods for analysing gut contents have improved since , a team of researchers decided to re-investigate the gut contents of Tollund Man in The last meal The study concluded that Tollund Man had eaten a barley porridge to which some seeds of pale persicaria and flax were added. E-mail: nhn museumsilkeborg. E-mail: re moesgaardmuseum. Revised Helene Eriksen.
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Research reveals recipe of Tollund man's last meal
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