The interaction of cell and organelle membranes (lipid bilayers) with nanoelectronics can enable new technologies to sense and measure electrophysiology in qualitatively new ways. To date, a variety of sensing devices have been demonstrated to measure membrane currents through macroscopic numbers of ion channels. However, nanoelectronic based sensing of single ion channel currents has been a challenge. Here, we report graphene-based field-effect transistors combined with supported lipid bilayers as a platform for measuring, for the first time, individual ion channel activity. We show that the supported lipid bilayers uniformly coat the single layer graphene surface, acting as a biomimetic barrier that insulates (both electrically and chemic...
In our work we investigate the development of a novel electrochemical biosensor that integrates a gr...
Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the ...
Membrane-bound ion channels are promising biological receptors since they allow for the stochastic d...
The interaction of cell and organelle membranes (lipid bilayers) with nanoelectronics can enable new...
Graphene is an attractive material not only because of its electronic and optical properties, but al...
International audienceGraphene, the atomically-thin honeycomb carbon lattice, is a highly conducting...
Many processes in life are based on ion currents and membrane voltages controlled by a sophisticated...
Anionic and cationic lipids are key molecules involved in many cellular processes; their distributio...
© 2017 Dr. Hualin ZhanResearch of graphene for life science has attracted significant attention from...
upported lipid bilayers (SLBs) have ri-sen as a robust alternative to the tradi-tional and fragile b...
Single-layer graphene consists of sp2-bonded carbon atoms arranged in a two-dimensional (2D) hexagon...
Graduation date:2018Atomically-thin graphene sheets have unprecedented characteristics for biosensin...
In our work we investigate the development of a novel electrochemical biosensor using graphene as tr...
In our work we investigate the development of a novel electrochemical biosensor using graphene as tr...
Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the ...
In our work we investigate the development of a novel electrochemical biosensor that integrates a gr...
Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the ...
Membrane-bound ion channels are promising biological receptors since they allow for the stochastic d...
The interaction of cell and organelle membranes (lipid bilayers) with nanoelectronics can enable new...
Graphene is an attractive material not only because of its electronic and optical properties, but al...
International audienceGraphene, the atomically-thin honeycomb carbon lattice, is a highly conducting...
Many processes in life are based on ion currents and membrane voltages controlled by a sophisticated...
Anionic and cationic lipids are key molecules involved in many cellular processes; their distributio...
© 2017 Dr. Hualin ZhanResearch of graphene for life science has attracted significant attention from...
upported lipid bilayers (SLBs) have ri-sen as a robust alternative to the tradi-tional and fragile b...
Single-layer graphene consists of sp2-bonded carbon atoms arranged in a two-dimensional (2D) hexagon...
Graduation date:2018Atomically-thin graphene sheets have unprecedented characteristics for biosensin...
In our work we investigate the development of a novel electrochemical biosensor using graphene as tr...
In our work we investigate the development of a novel electrochemical biosensor using graphene as tr...
Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the ...
In our work we investigate the development of a novel electrochemical biosensor that integrates a gr...
Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the ...
Membrane-bound ion channels are promising biological receptors since they allow for the stochastic d...