Lukas Wagner

@lukaswagner.bsky.social

Postdoc at the Solar Energy Conversion group at university of Marburg. Research on perovskite PV, physical characterization and aspects of sustainability.

I am very happy to share that I am now leading my own research group! 🎉🔬 My group at @UniMarburg will work on #SustainablyScalable #Perovskite #Photovoltaics (superPV group). ☀️⚡ I am grateful to #BMFTR for supporting me with a 5-year, ~2M€ grant in the #NanoMatFutur program.

Universität Marburg@unimarburg.bsky.social · 6mo ago

Dr. Lukas Wagner baut an #UniMarburg #Nachwuchsgruppe zu nachhaltig skalierbarer #Perowskit-Photovoltaik auf -- das sind #Materialien für #Solarzellen der #Zukunft, ideal fürs #Skalieren auf #Terawatt-Maßstab. #Forschung #Sustainability Foto: J Hosan ➡️https://uni-marburg.de/K8SBov

Portrait von Lukas Wagner. Foto: Jan Hosan

It was a pleasure chairing together with @nakitaknoel.bsky.social a session at the @nanoge.org #PerFunPro conference. Thanks for great talks: @brunoehrler.bsky.social, Ivan Zaluzhnyy, Fatemeh Haddadi Barzoki, Tobias Schulz, Dilara Öz, @janoschsolar.bsky.social , Tomasz Marszalek, Maryam Choghaei.

Nanoge Conferences@nanoge.org · 11mo ago

Perovskite breakthroughs at #PerFunPro: 👉Bruno Ehrler on a combined approach to mobile ion behaviour 👉@janosch_go on the essential solar cell parameters: VOC, JSC and FF 👉Tomasz Marszalek on dimensional hybrid perovskites for large-area electronics 🔗https://www.nanoge.org/PerFunPro/home

5 years ago we started working on carbon electrodes for p-i-n devices. Little did we know how difficult it would turn out to be. But hey we did it 🤗 also found out that carbon electrodes are actually semiconducting pubs.acs.org/doi/full/10....

Charge Extraction Multilayers Enable Positive-Intrinsic-Negative Perovskite Solar Cells with Carbon Electrodes

Perovskite solar cells achieve high power conversion efficiencies but usually rely on vacuum-deposited metallic contacts, leading to high material costs for noble metals and stability issues for more reactive metals. Carbon-based materials offer a cost-effective and potentially more stable alternative. The vast majority of carbon-electrode PSCs use the negative-intrinsic-positive (n-i-p) or “hole-transport-layer-free” architectures. Here, we present a systematic study to assess the compatibility of “inverted”, p-i-n configuration PSC contact layers with carbon top electrodes. We identify incompatibilities between common electron transport layers and the carbon electrode deposition process and previously unobserved semiconducting properties in carbon electrodes with unique implications for charge extraction and electronic behavior. To overcome these issues, we introduce a double-layer atomic layer deposited tin oxide (SnO2) and Poly(2,3-dihydrothieno-1,4-dioxin)-poly(styrenesulfonate) (PEDOT:PSS), yielding up to 16.1% PCE and a retained 94% performance after 500 h of outdoor aging. The study is a crucial step forward for printable, metal-electrode-free, and evaporation-free perovskite PV technologies.

pubs.acs.org