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Electrical Engineering and Information Technology

Schlagwort: ‘IWE1’

Building an Emerging Research Field: Synthetic Biological Intelligence

April 24th, 2026 | by
A man in a white coat is holding a circuit board with various integrated components in a laboratory setting.

Dr Frank Sommerhage demonstrates a bioelectronic system for research in synthetic biological intelligence. © Frank Sommerhage

At the Institute of Materials in Electrical Engineering 1 (IWE1), the pioneering field of synthetic biological intelligence is being further developed, made possible by funding under the DAAD’s “Academic Horizons – Attracting Global Minds” programme. Specifically, the “GROW-SBI” project, led by Dr Frank Sommerhage, aims to attract international academic talent and provide new impetus at the interface of electrical engineering, biotechnology and AI.

Research in this field opens up prospects for adaptive, energy-efficient and learning systems that differ fundamentally from today’s digital architectures. The central question is how biological and technical processes can be integrated to enable novel forms of information processing.

“Unlike in classical artificial intelligence, synthetic biological intelligence does not focus solely on software. Rather, it is about the interaction between modern technology and living nerve cells,” explains Frank Sommerhage.

However, this research also raises new scientific and ethical questions regarding control, stability, and responsibility when dealing with biohybrid systems. This topic therefore brings together researchers from a wide range of disciplines. At RWTH Aachen University, synthetic biological intelligence is currently being actively established, and it has not yet been institutionalised in Germany either.

Forscherin trägt Probe auf Objektträger auf.

© Martin Braun

Dr Frank Sommerhage, project leader, has been advancing this field of research in the USA for many years. In October 2025, he returned to RWTH, his alma mater, where he obtained his PhD in 2011 with a thesis entitled ‘Chloride versus Protons – Ion Currents in the Cell-Transistor Junction’. He now wishes to nurture young talent himself.

The first international group will arrive at RWTH for a three-week onboarding programme as early as this summer. This will include laboratory visits and workshops, as well as insights into cell culture, sensor technology, computer-aided analysis, philosophy, and applied ethics. Support services will also be provided to help participants settle into research and life in Aachen.

“With our approach, we are strengthening RWTH’s profile in the field of medical science and technology,” says Dr Sommerhage.

RWTH Aachen will receive funding totalling €750,000 until the end of 2029 under the DAAD programme “Academic Horizons – Attracting Global Minds”. These funds are provided by the Federal Ministry of Research, Technology and Space as part of the “Global Minds Initiative Germany”. The initiative aims to support German universities in attracting outstanding talent from around the world to undertake master’s and doctoral programmes in key technologies and strategically relevant fields of research.

Funding will be awarded to interdisciplinary and collaborative research projects that contribute to raising the profile of, and promoting the internationalisation of, the respective university. A total of 20 German universities are receiving funding under the programme.


The German Academic Exchange Service (DAAD) is a non-profit organisation funded by German universities and student unions. It is the world’s largest funding organisation for international student and researcher exchange programmes. Since its foundation in 1925, the DAAD has supported over 2.9 million young academics in Germany and overseas.

At the Interface of Medicine and Engineering: New Technologies for Implantation Biology

February 17th, 2026 | by
Close-up of a microscope with a slide.

© Martin Braun

In an online seminar, Dr Madhuri Salker will discuss her current research, which centres on the study of human implantation and pregnancy loss. To this end, she employs reconstructed assemblages, multimodal single-cell sequencing, and nanosensor development.

Dr Madhuri Salker is investigating the molecular and immunological processes of early pregnancy. The Tübingen University Hospital researcher and University of British Columbia assistant professor was recently awarded a highly endowed project grant in the form of a European Research Council Consolidator Grant. In her project babyRADAR, she intends to use cutting-edge technologies to improve our understanding of the endometrium’s decision-making processes during implantation. The interaction of steroid hormones, immune cells and tissue dynamics will be a particular focus, as these processes can now be quantified in real time using nanoscale sensor systems for the first time.

In her presentation, she will focus on reconstructed endometrial tissue models, multimodal single-cell sequencing, and the development of highly sensitive nanosensors. These approaches enable the precise analysis of communication between maternal tissue and the embryo, and the identification of molecular dysregulations that can lead to implantation failure or miscarriage.

‘Understanding why implantation fails could allow us to develop new diagnostic procedures, improve fertility treatments, and offer hope to affected families,’ explains Madhuri Salker.

Integrated micro-electro-mechanical systems (MEMS) devices play a special role in this context. These miniature, sensor-integrated microsystems enable precise control of microfluidic environments and real-time monitoring of biochemical and mechanical processes at the cellular level. This enables cellular forces, dynamic signals and metabolic processes to be recorded continuously and in high resolution.

There are clear links here to research at the Faculty of Electrical Engineering and Information Technology, specifically the Institute of Materials in Electrical Engineering 1 (IWE1). Headed by Professor Sven Ingebrandt, the institute places a special focus on developing micro- and nanosystems for biotechnology and biomedical diagnostics. The institute’s core competencies include coupling biological systems, such as living cells, membranes, and proteins, with technical systems to create novel sensors, microfluidic systems, and intelligent implants.

This technological expertise is directly relevant to Madhuri Salker’s research. She uses integrated MEMS components in her studies of implant biology. Combining basic research in reproductive medicine with the development of micro- and nanosystem technologies thus opens up new opportunities for interdisciplinary collaboration between medicine and engineering. Against this backdrop, the lecture will explore potential technological collaborations between Professor Sven Ingebrandt and Dr Madhuri Salker. It will focus on how micro- and nanosystem technology developments can support biomedical research.


Participation: On Tuesday, 24 February 2026, the event will take place online via Zoom, starting at 5 p.m. and lasting until 6:30 p.m.
Meeting ID: 644 5259 3117
Access code: 985261