On the road towards the long-term goal of the NCCR Molecular Systems Engineering to create artificial molecular factories, we aim at introducing a compartmentalization strategy based on solid-state silicon technology targeting zeptoliter reaction volumes and simultaneous electrical contact to ensembles of well-oriented molecules. This approach allows the probing of molecular building blocks under a controlled environment prior to their use in a complex molecular factory. Furthermore, these ultra-sensitive electrical conductance measurements allow molecular responses to a variety of external triggers to be used as sensing and feedback mechanisms. So far, we demonstrate the proof-of-concept by electrically contacting self-assembled mono-layer...
Nanopore-based sensors are advancing the sensitivity and selectivity of single-molecule detection in...
We describe the use of asymmetric nanopores decorated with crown ethers for constructing robust sign...
Ultrathin nanopore membranes based on 2D materials have demonstrated ultimate resolution toward DNA ...
On the road towards the long-term goal of the NCCR Molecular Systems Engineering to create artificia...
Solid-state nanopores are fascinating objects that enable the development of specific and efficient ...
The 21st century marks the defining point of human history in terms of technological advancement. I...
Exploring and understanding how the smallest scale features of a cell affect biochemical reactions h...
The ability of living systems to respond to stimuli and process information has encouraged scientist...
We demonstrate the possibility of using a simple functionalization procedure, based on an initial v...
Development of sophisticated tools capable of manipulating molecules at their own length scale enabl...
Nanopores have been explored with the goal of achieving non-functionalized, sub-molecular sensors, p...
Synthetic nucleic acids offer rich potential to understand and engineer new cellular functions, yet ...
In nature, ion channels facilitate the selective transport of ions, water and small organic molecule...
Ultrathin nanopore membranes based on 2D materials have demonstrated ultimate resolution toward DNA ...
We present an experimental and theoretical characterization of single cigar-shaped nanopores with pH...
Nanopore-based sensors are advancing the sensitivity and selectivity of single-molecule detection in...
We describe the use of asymmetric nanopores decorated with crown ethers for constructing robust sign...
Ultrathin nanopore membranes based on 2D materials have demonstrated ultimate resolution toward DNA ...
On the road towards the long-term goal of the NCCR Molecular Systems Engineering to create artificia...
Solid-state nanopores are fascinating objects that enable the development of specific and efficient ...
The 21st century marks the defining point of human history in terms of technological advancement. I...
Exploring and understanding how the smallest scale features of a cell affect biochemical reactions h...
The ability of living systems to respond to stimuli and process information has encouraged scientist...
We demonstrate the possibility of using a simple functionalization procedure, based on an initial v...
Development of sophisticated tools capable of manipulating molecules at their own length scale enabl...
Nanopores have been explored with the goal of achieving non-functionalized, sub-molecular sensors, p...
Synthetic nucleic acids offer rich potential to understand and engineer new cellular functions, yet ...
In nature, ion channels facilitate the selective transport of ions, water and small organic molecule...
Ultrathin nanopore membranes based on 2D materials have demonstrated ultimate resolution toward DNA ...
We present an experimental and theoretical characterization of single cigar-shaped nanopores with pH...
Nanopore-based sensors are advancing the sensitivity and selectivity of single-molecule detection in...
We describe the use of asymmetric nanopores decorated with crown ethers for constructing robust sign...
Ultrathin nanopore membranes based on 2D materials have demonstrated ultimate resolution toward DNA ...