scholarly journals Out-of-plane faradaic ion concentration polarization: stable focusing of charged analytes at a three-dimensional porous electrode

Author(s):  
Beatrise Berzina ◽  
Sungu Kim ◽  
Umesha Peramune ◽  
Kumar Saurabh ◽  
Baskar Ganapathysubramanian ◽  
...  

Ion concentration polarization (ICP) accomplishes preconcentration for bioanalysis by localized depletion of electrolyte ions, thereby generating a gradient in electric field strength that facilitates electrokinetic focusing of charged analytes by their electromigration against opposing fluid flow. Such ICP focusing has been shown to accomplish up to a million-fold enrichment of nucleic acids and proteins in single-stage preconcentrators. However, the rate at which the sample volume is swept is limited, requiring several hours to achieve these high enrichment factors. This limitation is caused by two factors. First, an ion depleted zone (IDZ) formed at a planar membrane or electrode may not extend across the full channel cross section under the flow rate employed for focusing, thereby allowing the analyte “leak” past the IDZ. Second, within the IDZ, large fluid vortices lead to mixing, which decreases the efficiency of analyte enrichment and worsens with increased channel dimensions. Here, we address these challenges with faradaic ICP (fICP) at a three-dimensional (3D) electrode comprising metallic microbeads. This 3D-electrode distributes the IDZ, and therefore, the electric field gradient utilized for counter-flow focusing across the full height of the fluidic channel, and its large area, microstructured surface supports smaller vortices. An additional bed of insulating microbeads restricts flow patterns and supplies a large area for surface conduction of ions through the IDZ. Finally, the resistance of this secondary bed enhances focusing by locally strengthening sequestering forces. This easy-to-build platform lays a foundation for the integration of enrichment with user-defined packed bed and electrode materials.

2021 ◽  
Author(s):  
Beatrise Berzina ◽  
Sungu Kim ◽  
Umesha Peramune ◽  
Kumar Saurabh ◽  
Baskar Ganapathysubramanian ◽  
...  

Ion concentration polarization (ICP) accomplishes preconcentration for bioanalysis by localized depletion of electrolyte ions, thereby generating a gradient in electric field strength that facilitates electrokinetic focusing of charged analytes by their electromigration against opposing fluid flow. Such ICP focusing has been shown to accomplish up to a million-fold enrichment of nucleic acids and proteins in single-stage preconcentrators. However, the rate at which the sample volume is swept is limited, requiring several hours to achieve these high enrichment factors. This limitation is caused by two factors. First, an ion depleted zone (IDZ) formed at a planar membrane or electrode may not extend across the full channel cross section, thereby allowing the analyte “leak” past the IDZ. Second, within the IDZ, large fluid vortices lead to mixing, which decreases the efficiency of analyte enrichment and worsens with increased channel dimensions. Here, we address these challenges with faradaic ICP (fICP) at a three-dimensional (3D) electrode comprising metallic microbeads. This 3D-electrode distributes the IDZ, and therefore, the electric field gradient utilized for counter-flow focusing across the full height of the fluidic channel, and its large area, microstructured surface supports smaller vortices. An additional bed of insulating microbeads restricts flow patterns and supplies a large area for surface conduction of ions through the IDZ. Finally, the resistance of this secondary bed enhances focusing by locally strengthening sequestering forces. This easy-to-build platform lays a foundation for the integration of enrichment with user-defined packed bed and electrode materials.


Lab on a Chip ◽  
2022 ◽  
Author(s):  
Beatrise Berzina ◽  
Sungu Kim ◽  
Umesha Peramune ◽  
Kumar Saurabh ◽  
Baskar Ganapathysubramanian ◽  
...  

Ion concentration polarization (ICP) accomplishes preconcentration for bioanalysis by localized depletion of electrolyte ions, thereby generating a gradient in electric field strength that facilitates electrokinetic focusing of charged analytes by...


Micromachines ◽  
2019 ◽  
Vol 10 (9) ◽  
pp. 562 ◽  
Author(s):  
Jie Li ◽  
Dilin Chen ◽  
Jian Ye ◽  
Lai Zhang ◽  
Teng Zhou ◽  
...  

The problem of water shortage needs to be solved urgently. The membrane-embedded microchannel structure based on the ion concentration polarization (ICP) desalination effect is a potential portable desalination device with low energy consumption and high efficiency. The electroosmotic flow in the microchannel of the cation exchange membrane and the desalination effect of the system are numerically analyzed. The results show that when the horizontal electric field intensity is 2 kV/m and the transmembrane voltage is 400 mV, the desalting efficiency reaches 97.3%. When the electric field strength increases to 20 kV/m, the desalination efficiency is reduced by 2%. In terms of fluid motion, under the action of the transmembrane voltage, two reverse eddy currents are formed on the surface of the membrane due to the opposite electric field and pressure difference on both sides of the membrane, forming a pumping effect. The electromotive force in the channel exhibits significant pressure-flow characteristics with a slip boundary at a speed approximately six times that of a non-membrane microchannel.


2020 ◽  
Vol 11 (21) ◽  
pp. 5547-5558 ◽  
Author(s):  
Collin D. Davies ◽  
Richard M. Crooks

Electric field gradients formed by electrochemical processes at bipolar electrodes continuously direct the flow of charged objects in microfluidic devices.


Lab on a Chip ◽  
2012 ◽  
Vol 12 (21) ◽  
pp. 4472 ◽  
Author(s):  
Sung Hee Ko ◽  
Yong-Ak Song ◽  
Sung Jae Kim ◽  
Myungji Kim ◽  
Jongyoon Han ◽  
...  

2016 ◽  
Vol 7 (1) ◽  
Author(s):  
Sungmin Park ◽  
Yeonsu Jung ◽  
Seok Young Son ◽  
Inhee Cho ◽  
Youngrok Cho ◽  
...  

Nanoscale ◽  
2018 ◽  
Vol 10 (32) ◽  
pp. 15187-15194 ◽  
Author(s):  
Wei Ouyang ◽  
Xinghui Ye ◽  
Zirui Li ◽  
Jongyoon Han

Elucidating the mechanism of electrokinetic molecular concentration in terms of theoretical limits for the concentration factor and their scaling laws.


2018 ◽  
Vol 39 (15) ◽  
pp. 2029-2038 ◽  
Author(s):  
Steven Marczak ◽  
Katherine Richards ◽  
Zeinab Ramshani ◽  
Elaine Smith ◽  
Satyajyoti Senapati ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document