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Sang Yul Baek

Sungkyunkwan University · 工学

研究室紹介

Professor Sang Yul Baek's research lab specializes in bioinspired adhesion and soft robotics, focusing on developing advanced, biocompatible adhesive systems that mimic natural structures found in octopuses, tree frogs, and diving beetles. The lab pioneers smart, switchable, and sensory-integrated adhesive devices for wearable electronics, medical diagnostics, and minimally invasive therapies, emphasizing robust performance on wet, rough, or dynamic biological surfaces. Key research directions include hierarchical micro/nano-architectures, in situ skin interfacing, and stimuli-responsive adhesion mechanisms for real-time health monitoring and therapeutic applications.

bioinspired adhesionwearable electronicssoft roboticsskin-interfacing devicessensory adhesives

Research Overview

Papers
44
Total Citations
2,257
Papers (5y)
16
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
16total
2022
2023
2024
2025
2026
Citations per year (5y)
91total
20222023202420252026

Selected Papers

15
1
Article|551 citations·2017
A wet-tolerant adhesive patch inspired by protuberances in suction cups of octopi
Sangyul Baik, Da Wan Kim, Youngjin Park, Tae‐Jin Lee, Suk Ho Bhang, Changhyun Pang
SJR Q1Nature
Surfaces, Coatings and FilmsMaterials Science
2
Review|297 citations·2019
Bioinspired Adhesive Architectures: From Skin Patch to Integrated Bioelectronics
Sangyul Baik, Heon Joon Lee, Da Wan Kim, Ji Won Kim, Youngkwan Lee, Changhyun Pang
SJR Q1Advanced Materials

The attachment phenomena of various hierarchical architectures found in nature have extensively drawn attention for developing highly biocompatible adhesive on skin or wet inner organs without any chemical glue. Structural adhesive systems have become important to address the issues of human-machine interactions by smart outer/inner organ-attachable devices for diagnosis and therapy. Here, advances in designs of biologically inspired adhesive architectures are reviewed in terms of distinct struc

Biomedical EngineeringEngineering
3
Article|210 citations·2019
Highly Permeable Skin Patch with Conductive Hierarchical Architectures Inspired by Amphibians and Octopi for Omnidirectionally Enhanced Wet Adhesion
Da Wan Kim, Sangyul Baik, Hyeongho Min, Sungwoo Chun, Heon Joon Lee, Ki Hyun Kim, Jun Young Lee, Changhyun Pang
SJR Q1Advanced Functional Materials

Abstract Amphibian adhesion systems can enhance adhesion forces on wet or rough surfaces via hexagonal architectures, enabling omnidirectional peel resistance and drainage against wet and rough surfaces, often under flowing water. In addition, an octopus has versatile suction cups with convex cup structures located inside the suction chambers for strong adhesion in various dry and wet conditions. Highly air‐permeable, water‐drainable, and reusable skin patches with enhanced pulling adhesion and

Biomedical EngineeringEngineering
4
Article|192 citations·2018
Conductive and Stretchable Adhesive Electronics with Miniaturized Octopus‐Like Suckers against Dry/Wet Skin for Biosignal Monitoring
Sungwoo Chun, Da Wan Kim, Sangyul Baik, Heon Joon Lee, Jung Heon Lee, Suk Ho Bhang, Changhyun Pang
SJR Q1Advanced Functional Materials

Abstract High adhesion and water resistance on skin surfaces are highly demanded properties for wearable and skin‐attachable electronics in various medical applications. Here, stretchable electronics with octopus‐like patterns (OPs) imprinted on a carbon‐based conductive polymer composite (CPC) film are presented. The bioinspired conductive suckers with dome‐like architectures are successfully exploited to sustain weight (500 g) in underwater, wherein this performance is known to be challenging.

Biomedical EngineeringEngineering
5
Article|169 citations·2018
Highly Adaptable and Biocompatible Octopus‐Like Adhesive Patches with Meniscus‐Controlled Unfoldable 3D Microtips for Underwater Surface and Hairy Skin
Sangyul Baik, Jiwon Kim, Heon Joon Lee, Tae Hoon Lee, Changhyun Pang
SJR Q1Advanced ScienceOA

Abstract Adhesion capabilities of various skin architectures found in nature can generate remarkable physical interactions with their engaged surfaces. Among them, octopus suckers have unique hierarchical structures for reversible adhesion in dry and wet conditions. Here, highly adaptable, biocompatible, and repeatable adhesive patches with unfoldable, 3D microtips in micropillars inspired by the rim and infundibulum of octopus suction cup are presented. The bioinspired synthetic adhesives are f

Biomedical EngineeringEngineering
6
Article|82 citations·2021
An Electronically Perceptive Bioinspired Soft Wet-Adhesion Actuator with Carbon Nanotube-Based Strain Sensors
Heon Joon Lee, Sangyul Baik, Gui Won Hwang, Jin Ho Song, Da Wan Kim, Bo‐yong Park, Hyeongho Min, Jung Kyu Kim, Je‐Sung Koh, Tae‐Heon Yang, Changhyun Pang
SJR Q1ACS Nano

The development of bioinspired switchable adhesive systems has promising solutions in various industrial/medical applications. Switchable and perceptive adhesion regardless of the shape or surface shape of the object is still challenging in dry and aquatic surroundings. We developed an electronic sensory soft adhesive device that recapitulates the attaching, mechanosensory, and decision-making capabilities of a soft adhesion actuator. The soft adhesion actuator of an artificial octopus sucker ma

Biomedical EngineeringEngineering
7
Article|81 citations·2021
Diving beetle–like miniaturized plungers with reversible, rapid biofluid capturing for machine learning–based care of skin disease
Sangyul Baik, Jihyun Lee, Eun Je Jeon, Bo‐yong Park, Da Wan Kim, Jin Ho Song, Heon Joon Lee, Seung Yeop Han, Seung‐Woo Cho, Changhyun Pang
SJR Q1Science AdvancesOA

Recent advances in bioinspired nano/microstructures have received attention as promising approaches with which to implement smart skin-interfacial devices for personalized health care. In situ skin diagnosis requires adaptable skin adherence and rapid capture of clinical biofluids. Here, we report a simple, all-in-one device consisting of microplungers and hydrogels that can rapidly capture biofluids and conformally attach to skin for stable, real-time monitoring of health. Inspired by the male

Electrical and Electronic EngineeringEngineering
8
Article|73 citations·2019
Capillarity-Enhanced Organ-Attachable Adhesive with Highly Drainable Wrinkled Octopus-Inspired Architectures
Sangyul Baik, Heon Joon Lee, Da Wan Kim, Hyeongho Min, Changhyun Pang
SJR Q1ACS Applied Materials & Interfaces

Mimicking the attachment of octopus suction cups has become appealing for the development of skin/organ adhesive patches capable of strong, reversible adhesion in dry and wet conditions. However, achieving high conformity against the three-dimensionally (3D) rough and curved surfaces of the human body remains an enduring challenge for further medical applications of wound protection, diagnosis, or therapeutics. Here, an adhesive patch inspired by the soft wrinkles of miniaturized 3D octopus suct

Biomedical EngineeringEngineering
9
Article|62 citations·2021
Electrostatic–Mechanical Synergistic In Situ Multiscale Tissue Adhesion for Sustainable Residue‐Free Bioelectronics Interfaces
Da Wan Kim, Kang‐Il Song, Duhwan Seong, Yeon Soo Lee, Sangyul Baik, Jin Ho Song, Heon Joon Lee, Donghee Son, Changhyun Pang
SJR Q1Advanced Materials

Recent studies on soft adhesives have sought to deeply understand how their chemical or mechanical structures interact strongly with living tissues. The aim is to optimally address the unmet needs of patients with acute or chronic diseases. Synergistic adhesion involving both electrostatic (hydrogen bonds) and mechanical interactions (capillarity-assisted suction stress) seems to be effective in overcoming the challenges associated with long-term unstable coupling to tissues. Here, an electrosta

Biomedical EngineeringEngineering
10
Article|60 citations·2021
Tough Carbon Nanotube‐Implanted Bioinspired Three‐Dimensional Electrical Adhesive for Isotropically Stretchable Water‐Repellent Bioelectronics
Hyeongho Min, Sangyul Baik, Jin-Hyung Kim, Jihyun Lee, Bo‐Gyu Bok, Jin Ho Song, Min‐Seok Kim, Changhyun Pang
SJR Q1Advanced Functional Materials

Abstract Integrated bioelectronics with conformal adhesion interfaces on dry/wet biosurfaces and water‐repellent stretchable electric elements are in high demand for reliable real‐time diagnostics of the dynamic human body. Here, the authors present a diving beetle‐inspired electro‐adhesive patch with mechanically robust nanowire‐implanted conductive multiscale architectures that provides a skin‐adaptable, isotropically stretchable interface for a multiple‐biosignal monitoring device. Using a fa

Biomedical EngineeringEngineering
11
Article|58 citations·2020
Highly Air/Water-Permeable Hierarchical Mesh Architectures for Stretchable Underwater Electronic Skin Patches
Hyeongho Min, Siyeon Jang, Da Wan Kim, Jiwon Kim, Sangyul Baik, Sungwoo Chun, Changhyun Pang
SJR Q1ACS Applied Materials & Interfaces

The development of an electronic skin patch that can be used in underwater environments can be considered essential for fabricating long-term wearable devices and biomedical applications. Herein, we report a stretchable conductive polymer composite (CPC) patch on which an octopus sucker-inspired structure is formed to conformally contact with biological skin that may be rough and wet. The patch is patterned with a hexagonal mesh structure for water and air permeability. The patch films are suite

Biomedical EngineeringEngineering
12
Article|58 citations·2021
Delivery of a spheroids-incorporated human dermal fibroblast sheet increases angiogenesis and M2 polarization for wound healing
Sung‐Won Kim, Gwang‐Bum Im, Gun‐Jae Jeong, Sangyul Baik, Jiyu Hyun, Yujin Kim, Changhyun Pang, Young C. Jang, Suk Ho Bhang
SJR Q1Biomaterials
RehabilitationMedicine
13
Article|57 citations·2017
Bioinspired Geometry‐Switchable Janus Nanofibers for Eye‐Readable H2 Sensors
Heetak Han, Sangyul Baik, Borui Xu, Jungmok Seo, Sang-Geun Lee, Sera Shin, Jaehong Lee, Ja Hoon Koo, Yongfeng Mei, Changhyun Pang, Taeyoon Lee
SJR Q1Advanced Functional Materials

Nanoscale architectures found in nature have unique functionalities and their discovery has led to significant advancements in various fields including optics, wetting, and adhesion. The sensilla of arthropods, comprised of unique hierarchical structures, are a representative example which inspired the development of various bioinspired systems, owing to their hypersensitive and ultrafast responsivity to mechanical and chemical stimuli. This report presents a geometry‐switchable and highly H 2 ‐

Mechanical EngineeringEngineering
14
Article|42 citations·2019
Snail‐Inspired Dry Adhesive with Embedded Microstructures for Enhancement of Energy Dissipation
Jiwon Kim, Da Wan Kim, Sangyul Baik, Gui Won Hwang, Tae‐il Kim, Changhyun Pang
SJR Q1Advanced Materials Technologies

Abstract In various organisms in nature, the energy‐dissipation layers within their adhesive systems are known to play a significant role in enhancement of adhesion performance in pulling and peeling directions. Reported here is that the pedal‐muscle structures of snails can be exploited to form a repeatable, microstructure‐embedded adhesive, enabling enhanced adhesion in both pulling (13 N cm −2 ) and peeling (20 J m −2 ) directions with excellent repeatability (<1000 cycles). The measured a

Mechanics of MaterialsEngineering
15
Article|34 citations·2021
Bioinspired Microsphere-Embedded Adhesive Architectures for an Electrothermally Actuating Transport Device of Dry/Wet Pliable Surfaces
Sangyul Baik, Gui Won Hwang, Siyeon Jang, Suyeon Jeong, Ki Hyun Kim, Tae‐Heon Yang, Changhyun Pang
SJR Q1ACS Applied Materials & Interfaces

For highly conformable and universal transport devices, bioinspired dry adhesion systems with reversible molecular attractions (e.g., van der Waals forces, capillarity, or suction stress) between the engaged surfaces have recently become favorable for various dry/wet processes in flexible devices and medical applications. In addition, many efforts have been made for switchable attachments of such adhesives by employing costly sophisticated systems such as mechanically deformable chucks, UV-radia

Mechanics of MaterialsEngineering

Research Areas

Biomedical EngineeringMechanics of MaterialsRehabilitationMaterials ChemistryAutomotive EngineeringSurfaces, Coatings and Films

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