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Wonkyu Moon

Pohang University of Science and Technology · Engineering

About the Lab

Professor Wonkyu Moon's research lab specializes in advanced piezoelectric and capacitive microsensors for biomedical and human-machine interaction applications. The lab focuses on developing high-performance, miniaturized sensors using novel materials such as electrospun PBLG and PZT thin films, emphasizing enhanced sensitivity, wide dynamic range, and biocompatibility. Key research directions include wearable acoustic sensors, label-free biosensors for early disease detection, and innovative transduction mechanisms like ElGoFET for MEMS microphones.

piezoelectric microsensorswearable acoustic sensorsbiosensorselectrospun polymersMEMS transduction

Research Overview

Papers
265
Total Citations
2,127
Papers (5y)
35
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
35total
2022
2023
2024
2025
2026
Citations per year (5y)
258total
20222023202420252026

Selected Papers

15
1
Article|98 citations·2006
A new capacitive displacement sensor with high accuracy and long-range
Moojin Kim, Wonkyu Moon, Eui-Sung Yoon, Kwang-ryeol Lee
SJR Q1Sensors and Actuators A Physical
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
2
Article|76 citations·2022
A High‐Fidelity Skin‐Attachable Acoustic Sensor for Realizing Auditory Electronic Skin
Siyoung Lee, Junsoo Kim, Hajung Roh, Woongji Kim, Sein Chung, Wonkyu Moon, Kilwon Cho
SJR Q1Advanced Materials

Abstract Wearable auditory sensors are critical in user‐friendly sound‐recognition systems for smart human–machine interaction and the Internet of Things. However, previously reported wearable sensors have limited sound‐sensing quality as a consequence of a poor frequency response and a narrow acoustic‐pressure range. Here, a skin‐attachable acoustic sensor is presented that has higher sensing accuracy in wider auditory field than human ears, with flat frequency response (15–10 000 Hz) and a goo

Biomedical EngineeringEngineering
3
Article|59 citations·2010
A micro-machined piezoelectric hydrophone with hydrostatically balanced air backing
Sungjoon Choi, Haksue Lee, Wonkyu Moon
SJR Q1Sensors and Actuators A Physical
Mechanics of MaterialsEngineering
4
Article|56 citations·2006
A self-excited micro cantilever biosensor actuated by PZT using the mass micro balancing technique
Yeolho Lee, Geunbae Lim, Wonkyu Moon
SJR Q1Sensors and Actuators A Physical
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Article|46 citations·2000
Design guide of a membrane for a membrane reactor in terms of permeability and selectivity
Wonkyu Moon
SJR Q1Journal of Membrane Science
Mechanical EngineeringEngineering
6
Article|40 citations·2006
A new linear encoder-like capacitive displacement sensor
Moojin Kim, Wonkyu Moon
SJR Q1Measurement
Computer Networks and CommunicationsComputer Science
7
Article|30 citations·2004
Constitutive relations for piezoelectric benders under various boundary conditions
Jong-Kyu Park, Wonkyu Moon
SJR Q1Sensors and Actuators A Physical
Mechanics of MaterialsEngineering
8
Article|27 citations·2015
A micro-machined hydrophone employing a piezoelectric body combined on the gate of a field-effect transistor
Min Gyu Sung, Kumjae Shin, Wonkyu Moon
SJR Q1Sensors and Actuators A Physical
Electrical and Electronic EngineeringEngineering
9
Article|26 citations·2016
Electrospinning of well-aligned fiber bundles using an End-point Control Assembly method
Duc‐Nam Nguyen, Yonghwan Hwang, Wonkyu Moon
SJR Q1European Polymer Journal
BiomaterialsMaterials Science
10
Article|24 citations·2019
Piezoelectric polymer microfiber‐based composite for the flexible ultra‐sensitive pressure sensor
Duc‐Nam Nguyen, Wonkyu Moon
SJR Q2Journal of Applied Polymer Science

ABSTRACT This study presents a new type of composite consisting of piezoelectric poly(γ‐benzyl‐α, l ‐glutamate) (PBLG) polymer fibers, which contain a large dipole moment, and the elastomer polydimethylsiloxane (PDMS) as the matrix material. PBLG microfibers were fabricated and polarized using the electrospinning method and cast in PDMS to form a unidirectional continuous‐fiber composite. The PBLG/PDMS composite was characterized based on various aspects such as crystalline structure, mechanical

Biomedical EngineeringEngineering
11
Article|22 citations·2012
Electrode configuration method with surface profile effect in a contact-type area-varying capacitive displacement sensor
Daesil Kang, Wonkyu Moon
SJR Q1Sensors and Actuators A Physical
Computer Networks and CommunicationsComputer Science
12
Article|21 citations·2023
An improved analytic model for designing the polymer-composite stepped-plate transducer using the modified Mindlin plate theory
Beomseok Oh, Chayeong Kim, Dongwoo Lee, Junsuk Rho, Wonkyu Moon
SJR Q1Ultrasonics
Aerospace EngineeringEngineering
13
Article|19 citations·2015
A new transduction mechanism for hydrophones employing piezoelectricity and a field-effect transistor
Min Gyu Sung, Kumjae Shin, Wonkyu Moon
SJR Q1Sensors and Actuators A Physical
Biomedical EngineeringEngineering
14
Article|18 citations·2018
Electrospinning of poly(γ‐benzyl–α,L‐glutamate) microfibers for piezoelectric polymer applications
Duc‐Nam Nguyen, S. Michael Yu, Wonkyu Moon
SJR Q2Journal of Applied Polymer Science

ABSTRACT One of the latest developments in the field of piezoelectric polymers is the use of poly(γ‐benzyl‐α,L‐glutamate) (PBLG), a poly(amino acid) that can be poled along its α‐helical axis and fabricated into thermally stable piezoelectric microfibers via electrospinning. This study demonstrates a method for improving the piezoelectricity of electrospun PBLG microfibers by controlling the orientation of fibers using a method based on a concentrated electric field. The piezoelectricity is veri

Biomedical EngineeringEngineering
15
Article|17 citations·2015
A Micro-Machined Microphone Based on a Combination of Electret and Field-Effect Transistor
Kumjae Shin, Junsik Jeon, James E. West, Wonkyu Moon
SJR Q1SensorsOA

Capacitive-type transduction is now widely used in MEMS microphones. However, its sensitivity decreases with reducing size, due to decreasing air gap capacitance. In the present study, we proposed and developed the Electret Gate of Field Effect Transistor (ElGoFET) transduction based on an electret and FET (field-effect-transistor) as a novel mechanism of MEMS microphone transduction. The ElGoFET transduction has the advantage that the sensitivity is dependent on the ratio of capacitance compone

Electrical and Electronic EngineeringEngineering

Research Areas

Biomedical EngineeringElectrical and Electronic EngineeringAtomic and Molecular Physics, and OpticsMechanics of MaterialsMechanical EngineeringOceanography

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