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Yong-Lae Park

Seoul National University · 工学

研究室紹介

Professor Yong-Lae Park's research lab specializes in the development of soft robotics, wearable assistive devices, and bio-integrated sensors, with a focus on creating highly compliant, multifunctional systems that mimic biological structures and functions. The lab pioneers advanced fabrication techniques for soft sensors and actuators using elastomers, microfluidics, and embedded sensing technologies—enabling real-time monitoring of complex biomechanical motions and tissue interactions. Key research directions include MRI-compatible medical instruments, wearable robotic systems for rehabilitation, and multifunctional sensors capable of detecting multiple deformation modes simultaneously. The lab emphasizes the integration of soft materials, smart sensing, and human-centered design for applications in healthcare and robotics.

soft roboticswearable devicesbio-integrated sensorspneumatic artificial musclesmultimodal sensing

Research Overview

Papers
163
Total Citations
9,194
Papers (5y)
62
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
62total
2022
2023
2024
2025
2026
Citations per year (5y)
747total
20222023202420252026

Selected Papers

15
1
Article|765 citations·2012
Design and Fabrication of Soft Artificial Skin Using Embedded Microchannels and Liquid Conductors
Yong‐Lae Park, Bor‐Rong Chen, Robert J. Wood
SJR Q1IEEE Sensors Journal

We describe the design, fabrication, and calibration of a highly compliant artificial skin sensor. The sensor consists of multilayered mircochannels in an elastomer matrix filled with a conductive liquid, capable of detecting multiaxis strains and contact pressure. A novel manufacturing method comprised of layered molding and casting processes is demonstrated to fabricate the multilayered soft sensor circuit. Silicone rubber layers with channel patterns, cast with 3-D printed molds, are bonded t

Biomedical EngineeringEngineering
2
Article|504 citations·2010
Hyperelastic pressure sensing with a liquid-embedded elastomer
Yong‐Lae Park, Carmel Majidi, Rebecca K. Kramer, Phillipe Bérard, Robert J. Wood
SJR Q2Journal of Micromechanics and MicroengineeringOA

A hyperelastic pressure transducer is fabricated by embedding silicone rubber with microchannels of conductive liquid eutectic gallium-indium. Pressing the surface of the elastomer with pressures in the range of 0-100 kPa will deform the cross-section of underlying channels and change their electric resistance by as much as 50%. Microchannels with dimensions as small as 25 mu m are obtained with a maskless, soft lithography process that utilizes direct laser exposure. Change in electrical resist

Biomedical EngineeringEngineering
3
Article|489 citations·2014
Design and control of a bio-inspired soft wearable robotic device for ankle–foot rehabilitation
Yong‐Lae Park, Bor‐Rong Chen, Néstor O. Pérez-Arancibia, Diana Young, Leia Stirling, Robert J. Wood, Eugene C. Goldfield, Radhika Nagpal
SJR Q1Bioinspiration & Biomimetics

We describe the design and control of a wearable robotic device powered by pneumatic artificial muscle actuators for use in ankle-foot rehabilitation. The design is inspired by the biological musculoskeletal system of the human foot and lower leg, mimicking the morphology and the functionality of the biological muscle-tendon-ligament structure. A key feature of the device is its soft structure that provides active assistance without restricting natural degrees of freedom at the ankle joint. Four

Biomedical EngineeringEngineering
4
Article|264 citations·2010
Real-Time Estimation of 3-D Needle Shape and Deflection for MRI-Guided Interventions
Yong‐Lae Park, Santhi Elayaperumal, Bruce L. Daniel, Seok Chang Ryu, Mihye Shin, Joan Savall, Richard J. Black, Behzad Moslehi, Mark R. Cutkosky
SJR Q1IEEE/ASME Transactions on Mechatronics

We describe a MRI-compatible biopsy needle instrumented with optical fiber Bragg gratings for measuring bending deflections of the needle as it is inserted into tissues. During procedures, such as diagnostic biopsies and localized treatments, it is useful to track any tool deviation from the planned trajectory to minimize positioning errors and procedural complications. The goal is to display tool deflections in real time, with greater bandwidth and accuracy than when viewing the tool in MR imag

Biomedical EngineeringEngineering
5
Article|225 citations·2020
Heterogeneous sensing in a multifunctional soft sensor for human-robot interfaces
Taekyoung Kim, Sudong Lee, Taehwa Hong, Gyowook Shin, Taehwan Kim, Yong‐Lae Park
SJR Q1Science Robotics

Soft sensors have been playing a crucial role in detecting different types of physical stimuli to part or the entire body of a robot, analogous to mechanoreceptors or proprioceptors in biology. Most of the currently available soft sensors with compact form factors can detect only a single deformation mode at a time due to the limitation in combining multiple sensing mechanisms in a limited space. However, realizing multiple modalities in a soft sensor without increasing its original form factor

Biomedical EngineeringEngineering
6
Article|126 citations·2011
Bio-inspired active soft orthotic device for ankle foot pathologies
Yong‐Lae Park, Bor‐Rong Chen, Diana Young, Leia Stirling, Robert J. Wood, Eugene C. Goldfield, Radhika Nagpal
2011 IEEE/RSJ International Conference on Intelligent Robots and Systems

We describe the design of an active soft ankle-foot orthotic device powered by pneumatic artificial muscles for treating gait pathologies associated with neuromuscular disorders. The design is inspired by the biological musculoskeletal system of a human foot and a lower leg, and mimics the muscle-tendon-ligament structure. A key feature of the device is that it is fabricated with flexible and soft materials that provide assistance without restricting degrees of freedom at the ankle joint. Three

Biomedical EngineeringEngineering
7
Article|115 citations·2009
Exoskeletal Force-Sensing End-Effectors With Embedded Optical Fiber-Bragg-Grating Sensors
Yong‐Lae Park, Seok Chang Ryu, Richard J. Black, Kelvin Chau, B. Moslehi, Mark R. Cutkosky
SJR Q1IEEE Transactions on Robotics

Force sensing is an essential requirement for dexterous robot manipulation. We describe composite robot end-effectors that incorporate optical fibers for accurate force sensing and estimation of contact locations. The design is inspired by the sensors in arthropod exoskeletons that allow them to detect contacts and loads on their limbs. In this paper, we present a fabrication process that allows us to create hollow multimaterial structures with embedded fibers and the results of experiments to c

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
8
Article|114 citations·2007
Force Sensing Robot Fingers using Embedded Fiber Bragg Grating Sensors and Shape Deposition Manufacturing
Yong‐Lae Park, Kelvin Chau, Richard J. Black, Mark R. Cutkosky
Proceedings - IEEE International Conference on Robotics and Automation/Proceedings

Force sensing is an essential requirement for dexterous robot manipulation. Although strain gages have been widely used, a new sensing approach is desirable for applications that require greater robustness, design flexibility and immunity to electromagnetic noise. An exoskeletal force sensing robot finger was developed by embedding fiber Bragg grating (FBG) sensors into a polymer-based structure. Multiple FBG sensors were embedded into the structure to allow the manipulator to sense and measure

Electrical and Electronic EngineeringEngineering
9
Article|109 citations·2009
Design and Control of a Bio-inspired Human-friendly Robot
Dongjun Shin, Irene Sardellitti, Yong‐Lae Park, Oussama Khatib, Mark R. Cutkosky
SJR Q1The International Journal of Robotics Research

The increasing demand for physical interaction between humans and robots has led to an interest in robots that guarantee safe behavior when human contact occurs. However, attaining established levels of performance while ensuring safety creates formidable challenges in mechanical design, actuation, sensing and control. To promote safety without compromising performance, a human-friendly robotic arm has been developed using the concept of hybrid actuation. The new design employs high-power, low-i

Biomedical EngineeringEngineering
10
Article|82 citations·2013
Smart pneumatic artificial muscle actuator with embedded microfluidic sensing
Yong‐Lae Park, Robert J. Wood

We describe the design, fabrication, and characterization of a novel pneumatic artificial muscle actuator with embedded contraction sensing. The muscle is composed of three main components: elastomer air chamber, embedded Kevlar threads, and a helical microchannel filled with a liquid conductor. When the air chamber is inflated with compressed air, the constrained length of the Kevlar threads causes the muscle to contract in the axial direction. During this contraction, the microchannel can dete

Biomedical EngineeringEngineering
11
Article|79 citations·2016
Design of flat pneumatic artificial muscles
Jackson Wirekoh, Yong‐Lae Park
SJR Q1Smart Materials and Structures

Pneumatic artificial muscles (PAMs) have gained wide use in the field of robotics due to their ability to generate linear forces and motions with a simple mechanism, while remaining lightweight and compact. However, PAMs are limited by their traditional cylindrical form factors, which must increase radially to improve contraction force generation. Additionally, this form factor results in overly complicated fabrication processes when embedded fibers and sensor elements are required to provide ef

Biomedical EngineeringEngineering
12
Article|78 citations·2019
Sensorized, Flat, Pneumatic Artificial Muscle Embedded with Biomimetic Microfluidic Sensors for Proprioceptive Feedback
Jackson Wirekoh, Luis Valle, Nishant Pol, Yong‐Lae Park
SJR Q1Soft RoboticsOA

In recent years, soft components, such as pneumatic artificial muscles (PAMs), have been increasingly employed to design safer wearable devices. Despite the inherent compliance of the materials used to fabricate PAMs, the actuators are able to produce relatively large forces and work when compared to their weight. However, effective operation of these systems has traditionally required bulky external force and position sensors, which limit the maneuverability of users. To overcome these issues,

Biomedical EngineeringEngineering
13
Article|73 citations·2018
Carbon nanotube-reinforced smart composites for sensing freezing temperature and deicing by self-heating
Sung‐Hwan Jang, Yong‐Lae Park
SJR Q2Nanomaterials and NanotechnologyOA

Carbon nanotube-reinforced polymer composites were fabricated by high shear mixing. The microstructure and the electrical properties of the carbon nanotube–polymer composites were investigated by scanning electron microscopy and electrical resistance measurement. We found that the carbon nanotube composites showed high electrical conductivity (1.5 S m −1 ) at 7.0 wt% of carbon nanotubes, and the increase in thickness enhanced the electrical conductivity of the composites. The multifunctional pro

PollutionEnvironmental Science
14
Article|72 citations·2012
Active modular elastomer sleeve for soft wearable assistance robots
Yong‐Lae Park, Bor‐Rong Chen, Carmel Majidi, Robert J. Wood, Radhika Nagpal, Eugene C. Goldfield

A proposed adaptive soft orthotic device performs motion sensing and production of assistive forces with a modular, pneumatically-driven, hyper-elastic composite. Wrapping the material around a joint will allow simultaneous motion sensing and active force response through shape and rigidity control. This monolithic elastomer sheet contains a series of miniaturized pneumatically-powered McKibben-type actuators that exert tension and enable adaptive rigidity control. The elastomer is embedded with

Biomedical EngineeringEngineering
15
Article|71 citations·2023
Liquid Crystal Elastomer Based Dexterous Artificial Motor Unit
Yang Wang, Qiguang He, Zhijian Wang, Shengjia Zhang, Chenghai Li, Zijun Wang, Yong‐Lae Park, Shengqiang Cai
SJR Q1Advanced MaterialsOA

Abstract Despite the great advancement in designing diverse soft robots, they are not yet as dexterous as animals in many aspects. One challenge is that they still lack the compact design of an artificial motor unit with a great comprehensive performance that can be conveniently fabricated, although many recently developed artificial muscles have shown excellent properties in one or two aspects. Herein, an artificial motor unit is developed based on gold‐coated ultrathin liquid crystal elastomer

Mechanical EngineeringEngineering

Research Areas

Biomedical EngineeringMechanical EngineeringCognitive NeuroscienceControl and Systems EngineeringElectrical and Electronic EngineeringRehabilitation

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