Manipulation of ions and molecules by external control at the nanoscale is highly relevant to biomedical applications. We report a biocompatible electrode-embedded nanofluidic channel membrane designed for electrofluidic applications such as ionic field-effect transistors for implantable drug-delivery systems. Our nanofluidic membrane includes a polysilicon electrode electrically isolated by amorphous silicon carbide (a-SiC). The nanochannel gating performance was experimentally investigated based on the current-voltage (I-V) characteristics, leakage current, and power consumption in potassium chloride (KCl) electrolyte. We observed significant modulation of ionic diffusive transport of both positively and negatively charged ions under phys...
Solid-state nanoporous membranes able to control ionic flows at the molecular level could have impor...
Electrolyte transport through an array of 20 nm wide, 20 μm long SiO_2 nanofluidic transistors is de...
Electric eels can generate high potential bioelectricity because of the numerous electrocytes, where...
Individualized long-term management of chronic pathologies remains an elusive goal despite recent pr...
Patient-centered therapeutic management for chronic medical conditions is a desired but unmet need, ...
We report an electro-nanofluidic membrane for tunable, ultra-low power drug delivery employing an io...
This work is focused on the research on how to leverage nanochannels in the eld of Nanomedicine. Mor...
Advances in nanofabrication techniques have allowed producing fluidic channels of sub-100nm dimensio...
Poster Division: Engineering, Math, and Physical Sciences: 1st Place (The Ohio State University Edwa...
Synthetic conical nanochannels have gained attention for their ion rectification behavior, which can...
[[abstract]]Due to its capability of mimicking ion channels in living organisms, the ionic transport...
Implantable electronics are of great interest owing to their capability for real-time and continuous...
General adoption of advanced treatment protocols such as chronotherapy will hinge on progress in dru...
Recently, tremendous engineering applications utilizing new physics of nanoscale electrokinetics hav...
Ion transport in nanochannels has unique behaviors such as charge selectivity and high ionic conduct...
Solid-state nanoporous membranes able to control ionic flows at the molecular level could have impor...
Electrolyte transport through an array of 20 nm wide, 20 μm long SiO_2 nanofluidic transistors is de...
Electric eels can generate high potential bioelectricity because of the numerous electrocytes, where...
Individualized long-term management of chronic pathologies remains an elusive goal despite recent pr...
Patient-centered therapeutic management for chronic medical conditions is a desired but unmet need, ...
We report an electro-nanofluidic membrane for tunable, ultra-low power drug delivery employing an io...
This work is focused on the research on how to leverage nanochannels in the eld of Nanomedicine. Mor...
Advances in nanofabrication techniques have allowed producing fluidic channels of sub-100nm dimensio...
Poster Division: Engineering, Math, and Physical Sciences: 1st Place (The Ohio State University Edwa...
Synthetic conical nanochannels have gained attention for their ion rectification behavior, which can...
[[abstract]]Due to its capability of mimicking ion channels in living organisms, the ionic transport...
Implantable electronics are of great interest owing to their capability for real-time and continuous...
General adoption of advanced treatment protocols such as chronotherapy will hinge on progress in dru...
Recently, tremendous engineering applications utilizing new physics of nanoscale electrokinetics hav...
Ion transport in nanochannels has unique behaviors such as charge selectivity and high ionic conduct...
Solid-state nanoporous membranes able to control ionic flows at the molecular level could have impor...
Electrolyte transport through an array of 20 nm wide, 20 μm long SiO_2 nanofluidic transistors is de...
Electric eels can generate high potential bioelectricity because of the numerous electrocytes, where...