electrophoretic transport
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2018 ◽  
Vol 9 ◽  
pp. 1390-1398 ◽  
Author(s):  
Axel Seidenstücker ◽  
Stefan Beirle ◽  
Fabian Enderle ◽  
Paul Ziemann ◽  
Othmar Marti ◽  
...  

A new route will be presented for an all-parallel fabrication of highly flexible, freestanding membranes with well-defined porosity. This fabrication is based on arrays of well-defined Au nanoparticles (NPs) exhibiting a high degree of hexagonal order as obtained in a first step by a proven micellar approach. These NP arrays serve as masks in a second reactive ion etching (RIE) step optimized for etching Si and some important Si compounds (silicon oxide, silicon nitride) on the nanoscale. Application to commercially available silicon nitride membranes of well-defined thickness, delivers a diaphragm with millions of nanopores of intended and controlled size, shape, and areal density with narrow distributions of these parameters. Electrophoretic transport measurements indicated a very low flow resistance of these porous membranes in ionic solutions as expected theoretically. Size-selective separation of protein molecules was demonstrated by real-time fluorescence microscopy.


2018 ◽  
Vol 531 ◽  
pp. 185-195 ◽  
Author(s):  
Hamid Hassanzadeh Afrouzi ◽  
Mousa Farhadi ◽  
Kurosh Sedighi ◽  
Abouzar Moshfegh

2017 ◽  
Vol 114 (18) ◽  
pp. 4597-4602 ◽  
Author(s):  
David J. Poxson ◽  
Michal Karady ◽  
Roger Gabrielsson ◽  
Aziz Y. Alkattan ◽  
Anna Gustavsson ◽  
...  

The organic electronic ion pump (OEIP) provides flow-free and accurate delivery of small signaling compounds at high spatiotemporal resolution. To date, the application of OEIPs has been limited to delivery of nonaromatic molecules to mammalian systems, particularly for neuroscience applications. However, many long-standing questions in plant biology remain unanswered due to a lack of technology that precisely delivers plant hormones, based on cyclic alkanes or aromatic structures, to regulate plant physiology. Here, we report the employment of OEIPs for the delivery of the plant hormone auxin to induce differential concentration gradients and modulate plant physiology. We fabricated OEIP devices based on a synthesized dendritic polyelectrolyte that enables electrophoretic transport of aromatic substances. Delivery of auxin to transgenic Arabidopsis thaliana seedlings in vivo was monitored in real time via dynamic fluorescent auxin-response reporters and induced physiological responses in roots. Our results provide a starting point for technologies enabling direct, rapid, and dynamic electronic interaction with the biochemical regulation systems of plants.


Author(s):  
Supreet Singh Bahga ◽  
Romir Moza ◽  
Mayank Khichar

Electrophoresis techniques are characterized by concentration disturbances (or waves) propagating under the effect of an electric field. These techniques are usually performed in microchannels where surface conduction through the electric double layer (EDL) at channel walls is negligible compared with bulk conduction. However, when electrophoresis techniques are integrated in nanochannels, shallow microchannels or charged porous media, surface conduction can alter bulk electrophoretic transport. The existing mathematical models for electrophoretic transport in multi-species electrolytes do not account for the competing effects of surface and bulk conduction. We present a mathematical model of multi-species electrophoretic transport incorporating the effects of surface conduction on bulk ion-transport and provide a methodology to derive analytical solutions using the method of characteristics. Based on the analytical solutions, we elucidate the propagation of nonlinear concentration waves, such as shock and rarefaction waves, and provide the necessary and sufficient conditions for their existence. Our results show that the presence of surface conduction alters the propagation speed of nonlinear concentration waves and the composition of various zones. Importantly, we highlight the role of surface conduction in formation of additional shock and rarefaction waves which are otherwise not present in conventional electrophoresis.


Lab on a Chip ◽  
2016 ◽  
Vol 16 (13) ◽  
pp. 2521-2531 ◽  
Author(s):  
Cheng Peng ◽  
Yide Wang ◽  
Y. Sungtaek Ju

We demonstrate digital microfluidics based on finger-powered electrophoretic transport of aqueous droplets immersed in dielectric oil. The electrodes are biased by converting mechanical energy into electrical energy using an array of piezoelectric elements.


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