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Simon Song

Hanyang University · 工学

研究室紹介

Professor Simon Song's research lab specializes in microfluidic systems, nanomaterials, and responsive polymers for biomedical and environmental sensing applications. The lab focuses on developing innovative microchip-based platforms that integrate stimuli-responsive materials—such as thermoresponsive polydiacetylenes and photochromic spiropyran-embedded PDMS—with advanced fluidic control strategies. Key research directions include on-chip protein concentration, temperature and gas sensing, and precise flow manipulation in paper-based and microfluidic devices using optical, thermal, and surface engineering approaches. The lab emphasizes low-cost, portable, and highly sensitive diagnostic systems for point-of-care and field-deployable applications.

microfluidicsstimuli-responsive polymerson-chip sensingpaper-based devicesoptofluidics

Research Overview

Papers
148
Total Citations
1,653
Papers (5y)
23
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
23total
2021
2023
2024
2025
2026
Citations per year (5y)
138total
20212023202420252026

Selected Papers

15
1
Article|164 citations·2004
Electrophoretic Concentration of Proteins at Laser-Patterned Nanoporous Membranes in Microchips
Simon Song, Anup K. Singh, Brian J. Kirby
SJR Q1Analytical Chemistry

Laser-patterning of nanoporous membranes at the junction of a cross channel in a microchip is used to integrate protein concentration with an electrokinetic injection scheme. Upon application of voltage, linear electrophoretic concentration of charged proteins is achieved at the membrane surface because buffer ions can easily pass through the membrane while proteins larger than the molecular weight cutoff of the membrane (>5700) are retained. Simple buffer systems can be used, and the concentrat

Biomedical EngineeringEngineering
2
Article|143 citations·2009
A Thermoresponsive Fluorogenic Conjugated Polymer for a Temperature Sensor in Microfluidic Devices
Sungmin Ryu, Imsung Yoo, Simon Song, Bora Yoon, Jong‐Man Kim
SJR Q1Journal of the American Chemical Society

A new, microfluidic temperature sensor system, based on a thermoresponsive conjugated polymer supramolecule, has been developed. By generating blue-phase polydiacetylene (PDA) sensor droplets using hydrodynamic instability, we were able to monitor the variation of fluorescent intensity of the droplets with respect to the flow temperature.

Organic ChemistryChemistry
3
Article|120 citations·2004
Microchip Dialysis of Proteins Using in Situ Photopatterned Nanoporous Polymer Membranes
Simon Song, Anup K. Singh, Timothy J. Shepodd, Brian J. Kirby
SJR Q1Analytical Chemistry

Chip-level integration of microdialysis membranes is described using a novel method for in situ photopatterning of porous polymer features. Rapid and inexpensive fabrication of nanoporous microdialysis membranes in microchips is achieved using a phase separation polymerization technique with a shaped UV laser beam. By controlling the phase separation process, the molecular weight cutoffs of the membranes can be engineered for different applications. Counterflow dialysis is used to demonstrate ex

Biomedical EngineeringEngineering
4
Article|92 citations·2014
Photochromic spiropyran-embedded PDMS for highly sensitive and tunable optochemical gas sensing
Yoonseung Nam, Imsung Yoo, Oktay Yarimaga, In‐Sung Park, Dong‐Hoon Park, Simon Song, Jong‐Man Kim, Chan Woo Lee
SJR Q1Chemical Communications

A highly sensitive, tunable, flexible and microfluidic compatible gas sensor was developed based on a photochromic spiropyran-embedded PDMS composite.

Materials ChemistryMaterials Science
5
Article|74 citations·2015
Facile and precise flow control for a paper-based microfluidic device through varying paper permeability
Ilhoon Jang, Simon Song
SJR Q1Lab on a Chip

Paper-based microfluidic devices have recently attracted attention for their ability to utilize the inherent capillary force, or absorptivity, of paper to generate flows instead of requiring an external force. This allows for a simple sensor system that can be readily manufactured at low costs; however, sophisticated flow control is still necessary to implement and analyze diverse functions. In this paper, we propose a facile flow rate control method by varying the permeability of chromatography

Biomedical EngineeringEngineering
6
Article|71 citations·2005
On-chip sample preconcentration for integrated microfluidic analysis
Simon Song, Anup K. Singh
SJR Q2Analytical and Bioanalytical Chemistry
Biomedical EngineeringEngineering
7
Article|53 citations·2007
Improvement of microchannel geometry subject to electrokinesis and dielectrophoresis using numerical simulations
Jae‐Sung Kwon, Joo-Sung Maeng, Myung‐Suk Chun, Simon Song
SJR Q2Microfluidics and Nanofluidics
Biomedical EngineeringEngineering
8
Article|47 citations·2018
Numerical study of high-speed two-phase ejector performance with R134a refrigerant
Sunghoon Baek, Seungbin Ko, Simon Song, Sungmin Ryu
SJR Q1International Journal of Heat and Mass Transfer
Mechanical EngineeringEngineering
9
Article|39 citations·2017
Estimation of the thermocapillary force and its applications to precise droplet control on a microfluidic chip
By June Won, Wooyoung Lee, Simon Song
SJR Q1Scientific ReportsOA

Droplet control through the use of light-induced thermocapillary effects has recently garnered attention due to its non-intrusive and multifunctional nature. An important issue in droplet control is the estimation of the thermocapillary force. The purpose of the present study is to estimate the thermocapillary force and propose empirical equations between the force and simply measurable key parameters such as droplet diameter and power of heat source. In addition, we aim to shift the droplet tra

Biomedical EngineeringEngineering
10
Article|37 citations·2008
A Microfluidic Conjugated‐Polymer Sensor Chip
Soo‐Han Eo, Simon Song, Bora Yoon, Jong‐Man Kim
SJR Q1Advanced Materials

A new, microfluidic polydiacetylene (PDA) sensor system based on the hydrodynamic focusing principle is developed. Narrow fluorescent bands are observed when the focused stream of a PDA solution contacts the sheath flows of cyclodextrin (CD) receptor molecules (see figure). The system allows for continuous and rapid monitoring of molecular recognition events.

Organic ChemistryChemistry
11
Article|31 citations·2015
Polydiacetylene-Embedded Microbeads for Colorimetric and Volumetric Sensing of Hydrocarbons
Jaesung Hong, Dong‐Hoon Park, Sunghoon Baek, Simon Song, Chan Woo Lee, Jong‐Man Kim
SJR Q1ACS Applied Materials & Interfaces

Rational design of a hydrocarbon sensor that enables visual differentiation of saturated aliphatic hydrocarbons (SAHCs) is very difficult owing to the lack of useful functional groups that can interact with the sensor system. Here, we report a microbead embedded with polydiacetylene that undergoes faster swelling and faster blue-to-red color change in response to the hydrocarbons of shorter alkyl chains. Accordingly, visual differentiation among n-pentane, n-heptane, n-nonane, and n-undecane was

Organic ChemistryChemistry
12
Article|27 citations·2012
Size‐Controlled Fabrication of Polydiacetylene‐Embedded Microfibers on a Microfluidic Chip
Imsung Yoo, Simon Song, Bora Yoon, Jong‐Man Kim
SJR Q1Macromolecular Rapid Communications

A microfluidic technique was employed to fabricate polydiacetylene (PDA)-embedded hydrogel microfibers. By taking advantage of calcium ion-induced insoluble hydrogel formation, supramolecularly assembled diacetylene (DA)-surfactant complexes were successfully immobilized in the calcium alginate fibers. Thus, instantaneous microfiber formation was observed when the core flow of DA supramolecules-containing alginate solution met the sheath flow of calcium ions. UV irradiation of the resulting fibe

Organic ChemistryChemistry
13
Article|26 citations·2019
Development of a Paper-Based Viscometer for Blood Plasma Using Colorimetric Analysis
Hyunwoong Kang, Ilhoon Jang, Simon Song, Sang‐Cheol Bae
SJR Q1Analytical Chemistry

The viscosity of biofluids can be used to acquire meaningful medical information on the conditions of a patient but has seldom been utilized in clinical practices owing to cumbersome measurement procedures and the need for large sample volumes. We present a colorimetric method to measure the viscosity of blood plasma using a paper-based viscometer developed in this study specifically for clinical diagnosis. The proposed analytical device consists of multilayered papers with fluid-loading, -mixin

Biomedical EngineeringEngineering
14
Article|21 citations·2016
Nanoscale diameter control of sensory polydiacetylene nanoparticles on microfluidic chip for enhanced fluorescence signal
Sunghoon Baek, Simon Song, Joosub Lee, Jong‐Man Kim
SJR Q1Sensors and Actuators B Chemical
Organic ChemistryChemistry
15
Article|16 citations·2010
Size-Controlled Fabrication of Supramolecular Vesicles for the Construction of Conjugated Polymer Sensors with Enhanced Optical Properties
Gangjune Kim, Simon Song, Jung Lee, Jong‐Man Kim
SJR Q1Langmuir

Polymerizable supramolecular monomer vesicles are readily fabricated by employing a hydrodynamic focusing method on a microfluidic chip. The polymerized diacetylenene nanovesicles, generated using the microfluidic method, display an improved fluorescence property compared to those prepared by employing a conventional bulk method. The flexibility of the vesicle size control by manipulating the flow conditions is another significant feature of the new microfluidic approach.

Organic ChemistryChemistry

Research Areas

Biomedical EngineeringOrganic ChemistryCellular and Molecular NeuroscienceSurfaces, Coatings and FilmsElectrical and Electronic EngineeringRadiology, Nuclear Medicine and Imaging

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