PubMed Health⌕ Search

Biomedical subjects

Jin-Woo Choi

Publications and source records attributed to Jin-Woo Choi.

6 recordsLinked to original sources

On-chip generated mercury microelectrode for heavy metal ion detection.

In this paper, the on-chip generated mercury microelectrode for heavy metal ion detection has been presented. A mercury droplet (approximately 150 microm in diameter) is on-chip generated to form a microelectrode through the mercury microfluidics control. The mercury microelectrode is used to electrochemically detect the heavy metal ions. The sample solutions with different concentration of heavy metal ions (Pb(2+) and Cd(2+)) have been successfully detected on the mercury droplet microelectrode using the square wave stripping voltammetry.

Journal Article↗

A new dynamic electrochemical transduction mechanism for interdigitated array microelectrodes.

A dynamic electrochemical transduction mechanism for interdigitated array microelectrodes using an electrical charge pumping method is presented in this paper. In this dynamic transduction mechanism, a charged external capacitor is used as the charge supplier for the electrochemical reaction of the reversible redox species at the interdigitated array electrodes. The charges stored in the capacitor are consumed as the electrochemical reaction current, which causes the capacitor potential decay. The theoretical analysis has shown that the species concentration has a decisive effect on the capacitor potential decay, and therefore the characteristics of the capacitor potential decay are recorded and analyzed to evaluate the concentration of redox species. The new transduction mechanism has the advantages of achieving high sensitivity with small sensor area and simplifying the measurement instrumentation. As a demonstration device, interdigitated array microelectrodes (approximately 0.2 mm(2) electrode surface area) have been fabricated and successfully characterized using p-aminophenol as the redox species under this dynamic mechanism. The detection limit of p-aminophenol was calculated to be approximately 4 x 10(-7) M for the sensor with the new dynamic transduction mechanism.

Aminophenols↗

A novel in-plane passive microfluidic mixer with modified Tesla structures.

An innovative in-plane passive micromixer using modified Tesla structures, which are used as passive valves, has been designed, simulated, fabricated and successfully characterized in this paper. Simulation and experimental results of the developed novel micromixer have shown excellent mixing performance over a wide range of flow conditions in the micro scale. The micromixer realized in this work has achieved even better mixing performance at a higher flow rate, and its pressure drop is less than 10 KPa at the flow rate of 100 microl min(-1). This micromixer shows characteristics similar to Taylor dispersion, with contributions from both diffusion and convection. The mixer has a diffusion domain region at low flow rate, but it moves to a convection domain region at high flow rate. Due to the simple in-plane structure of the novel micromixer explored in this work, the mixer can be easily realized and integrated with on-chip microfluidic devices and micro total analysis systems (micro-TAS).

Journal Article↗

A functional on-chip pressure generator using solid chemical propellant for disposable lab-on-a-chip.

This paper presents a functional on-chip pressure generator that utilizes chemical energy from a solid chemical propellant to perform fluidic delivery in applications of plastic-based disposable biochips or lab-on-a-chip systems. In this functional on-chip pressure generator, azobis-isobutyronitrile (AIBN) as the solid chemical propellant is deposited on a microheater using a screen-printing technique, which can heat the AIBN at 70 degrees C to produce nitrogen gas. The output pressure of nitrogen gas, generated from the solid chemical propellant, is adjustable to a desired pressure by controlling the input power of the heater. Using this chemical energy source, the generated pressure depends on the deposited amount of the solid chemical propellant and the temperature of the microheater. Experimental measurements show that this functional on-chip pressure generator can achieve around 3 000 Pa pressure when 189 mJ of energy is applied to heat the 100 microg of AIBN. This pressure can drive 50 nl of water through a microfluidic channel of 70 mm and cross-sectional area of 100 microm x 50 microm. Due to its compact size, ease of fabrication and integration, high reliability (no moving parts), biologically inert gas output along with functionality of gas generation, this pressure generator will be an excellent pressure source for handling the fluids of disposable lab-on-a-chip, biochemical analysis systems or drug delivery systems.

Aerosol Propellants↗

Fixed-volume metering microdispenser module.

In this work, we present a novel fixed-volume metering microdispenser module using the sPROMs (structurally programmable microfluidic systems) technology. We have designed, simulated, fabricated and characterized an array of microdispensers with volumes ranging from 50 nL [nanoliter] to 150 nL. We have characterized several key components of the microdispenser, such as passive microvalves and the air-driven liquid column splitting process, using extensive simulations. The fabricated devices show extremely good accuracy (99.2%) and repeatability characteristics. We also present a simple technique for unloading the sub-microL [microliter] volumes from the microfluidic chip for measurement purposes. The dispensers realized in this work have immediate applications as a key ingredient of the lab-on-a-chip device.

Journal Article↗

An integrated microfluidic biochemical detection system for protein analysis with magnetic bead-based sampling capabilities.

This paper presents the development and characterization of an integrated microfluidic biochemical detection system for fast and low-volume immunoassays using magnetic beads, which are used as both immobilization surfaces and bio-molecule carriers. Microfluidic components have been developed and integrated to construct a microfluidic biochemical detection system. Magnetic bead-based immunoassay, as a typical example of biochemical detection and analysis, has been successfully performed on the integrated microfluidic biochemical analysis system that includes a surface-mounted biofilter and electrochemical sensor on a glass microfluidic motherboard. Total time required for an immunoassay was less than 20 min including sample incubation time, and sample volume wasted was less than 50 microl during five repeated assays. Fast and low-volume biochemical analysis has been successfully achieved with the developed biofilter and immunosensor, which is integrated to the microfluidic system. Such a magnetic bead-based biochemical detection system, described in this paper, can be applied to protein analysis systems.

Electrochemistry↗