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Universitaet Stuttgart


Programming membrane transport

Researchers created a programmable DNA nanodevice that penetrates lipid membranes using mechanical motion, delivering molecular cargo into synthetic cells. The device enables active control of membrane transport in space and time.

SourceUniversitaet Stuttgart·JournalNature Nanotechnology·DateAug 11, 2026

Interactive photonics: bringing flat optics to life

Researchers at the University of Stuttgart developed an interactively addressable organic metadevice that uses electrically switchable materials to dynamically control light. The platform enables every metasurface pixel to be electronically controlled independently, allowing user commands to be translated into dynamic holographic images.

SourceUniversitaet Stuttgart·JournalNature Communications·DateJul 20, 2026

Algorithms for species conservation

Researchers developed an algorithm, RAPID, to re-identify wild animals using their coat patterns. The algorithm achieved high accuracy rates and demonstrated its speed on various datasets, making it a promising module for wildlife monitoring and ecological analyses.

SourceUniversitaet Stuttgart·JournalMethods in Ecology and Evolution·TypeExperimental study·DateJun 23, 2026

Breakthrough in synthetic cell research

Scientists at the University of Stuttgart have developed a synthetic membrane platform that mimics cellular interactions, allowing for coordinated molecular transport and programmable biochemical reactions. This breakthrough enables the creation of artificial compartments with dynamic regulation of membrane permeability, opening up opp...

SourceUniversitaet Stuttgart·JournalNature Chemistry·DateMay 26, 2026

Record-breaking photons at telecom wavelengths — on demand

A team of researchers has developed a novel single-photon source that combines on-demand operation with record-high photon quality in the telecommunications C-band. This achievement brings deterministic quantum dot sources into the same performance regime as probabilistic SPDC sources, enabling applications such as measurement-based qu...

SourceUniversitaet Stuttgart·JournalNature Communications·DateJan 30, 2026

Highly efficient and compact

Researchers have developed a new system that combines laser amplification and bandwidth, achieving 80% efficiency in a compact and versatile design. The system uses a multipass procedure to synchronize pulses and generate pulses shorter than 50 femtoseconds.

SourceUniversitaet Stuttgart·JournalNature·TypeNews article·DateNov 6, 2025

Bioinspired weather-responsive adaptive shading

Researchers developed an energy-autonomous facade system that adapts to weather using bioinspired design and additive manufacturing. The 'Solar Gate' system harnesses hygromorphism, a property of cellulose, to open and close autonomously without electrical energy.

SourceUniversitaet Stuttgart·JournalNature Communications·TypeComputational simulation/modeling·DateJan 14, 2025

New tool for synthetic biology

Scientists at the University of Stuttgart have developed a new tool for synthetic biology using DNA nanorobots that can alter artificial cells. These nanorobots enable the formation of transport channels in synthetic cell membranes, allowing large molecules to pass through and facilitating the transportation of therapeutic proteins.

SourceUniversitaet Stuttgart·JournalNature Materials·TypeExperimental study·DateJan 13, 2025

Breakthrough in quantum microscopy: Stuttgart researchers are making electrons visible in slow motion

Researchers at the University of Stuttgart have developed a breakthrough in quantum microscopy that allows them to observe the collective motion of electrons in materials. By studying the effect of impurities on these movements, they hope to develop materials with desired properties and create ultra-fast switching materials.

SourceUniversitaet Stuttgart·JournalNature Physics·TypeExperimental study·DateJul 16, 2024

A linear path to efficient quantum technologies

Researchers have demonstrated a way to perform Bell-state measurements with an efficiency exceeding the commonly assumed upper theoretical limit. This breakthrough opens up new perspectives for photonic quantum technologies and could lead to more efficient quantum computing, communication, and sensor devices.

SourceUniversitaet Stuttgart·JournalScience Advances·TypeExperimental study·DateSep 12, 2023

Surfing the research data wave

The EnzymeML format provides a standardized way to record enzymatic experiment results, including conditions, data, kinetic models, and parameters. This enables seamless communication between experimental platforms and promotes reproducibility and trust in scientific results.

SourceUniversitaet Stuttgart·JournalNature Methods·TypeData/statistical analysis·DateFeb 13, 2023

Quantum computers getting connected

A team of researchers from the University of Stuttgart successfully integrated color centers into nanophotonic silicon carbide structures, paving the way for more efficient quantum computers. The approach enables the robust spin-optical properties of the color centers to be maintained after integration.

SourceUniversitaet Stuttgart·JournalNature Materials·TypeExperimental study·DateNov 30, 2021

Virtual fluid for the description of interfacial effects in metallic materials

Physicists at the University of Stuttgart have developed a novel computer simulation strategy using a virtual fluid that allows for the calculation of electrostatic interactions within any material. This approach enables the study of wetting transitions and phase transitions of ionic liquids at metal surfaces, shedding light on unusual...

SourceUniversitaet Stuttgart·JournalNature Materials·TypeExperimental study·DateNov 17, 2021

New boost in quantum technologies

Researchers at the University of Stuttgart have successfully identified promising quantum bits in two-dimensional materials. The discovery enables robust generation, reading out, and control of quantum bits, paving the way for a new boost in quantum technologies.

SourceUniversitaet Stuttgart·JournalNature Materials·DateMay 6, 2021