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박태현 연구실
충남대학교 유기재료공학과
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박태현 연구실

충남대학교 유기재료공학과 박태현 교수

박태현 연구실은 고분자재료와 고분자 이온 전해질을 기반으로 블록공중합체 구조색, 포토닉 크리스털, 이온트로닉스, 웨어러블 센서 및 자가구동 인간-기계 인터페이스 소재를 연구하며, 정보 시각화·광학 암호화·생체신호 감지·열에너지 하베스팅 등 차세대 기능성 소자 응용을 지향하는 융합형 신소재 연구를 수행하고 있다.

대표 연구 분야
연구 영역 전체보기
블록공중합체 기반 구조색 및 광학 기능성 소재 thumbnail
블록공중합체 기반 구조색 및 광학 기능성 소재
주요 논문
5
논문 전체보기
1
article
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인용수 17
·
2024
Self‐Powered Sweat‐Responsive Structural Color Display
Taebin Kim, Tae Hyun Park, Jae Won Lee, Dong-Wook Lee, Seungsoo Mun, Gwangmook Kim, Yeonji Kim, Gwanho Kim, Jong Woong Park, Kyuho Lee, Seung Won Lee, Seung‐Bae Jeon, Du Yeol Ryu, Wooyoung Shim, Jayoung Kim, Cheolmin Park
IF 19
Advanced Functional Materials
Abstract Despite the remarkable progress in the development of sweat sensors, self‐powered sweat‐responsive sensing displays that detect sweat in electric signals with simultaneous and direct visualization of the sweat is rarely demonstrated. Here, a self‐powered sweat‐responsive structural color (SC) display enabled by ionomer‐doped block copolymer (BCP) photonic crystals (PCs) is presented. The sweat‐responsive BCP PC is developed by employing a cross‐linking single‐mobile ionomer (SMI) with mobile anions anchored to immobile polycations to a 1‐D BCP PC. The hydrophobic SMI‐doped BCP PC is mechanically robust as well as water and temperature‐resistive, exhibiting ionomer concentration‐dependent full visible SCs. Moreover, the mobile anions periodically confined in the SMI‐doped BCP PC harvest triboelectric energy, giving rise to a high‐power density of ≈0.774 Mw cm −2 . Cation‐sensitive SC variation is observed in the SMI‐doped BCP PC, allowing the visualization of sweat containing various cations. A skin‐patchable self‐powered sweat‐responsive display is demonstrated in which kirigami‐patterned SMI‐doped BCP PC incorporated in the display can withstand up to 50% strain during exercise. Sweat from the exercise is visualized via SC display and measured using both ionic resistance changes and triboelectric signals. In addition, the integration of sweat sensing membrane into SMI‐doped BCP PC enables the quantification of sweat.
https://doi.org/10.1002/adfm.202314721
Materials science
SWEAT
Doping
Electronic skin
Nanotechnology
Optoelectronics
2
article
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인용수 9
·
2023
Reconfigurable dual-mode optical encryption enabled by block copolymer photonic crystal with micro-imprinted holographic metasurface
Seungsoo Mun, Tae Hyun Park, Jin Woo Oh, Taebin Kim, Kyuho Lee, Chang Eun Lee, HoYeon Kim, Jong Woong Park, Seung‐Bae Jeon, Du Yeol Ryu, Sanghoon Cheon, Yong-Hae Kim, Seung‐Yeol Lee, Chi‐Sun Hwang, Joo Yeon Kim, Cheolmin Park
IF 22
Materials Today
https://doi.org/10.1016/j.mattod.2023.10.006
Holography
Reconfigurability
Materials science
Optoelectronics
Encryption
Optics
Computer science
Physics
3
review
|
인용수 52
·
2022
Soft Human–Machine Interface Sensing Displays: Materials and Devices
Seunggun Yu, Tae Hyun Park, Wei Jiang, Seung Won Lee, Eui Hyuk Kim, Seokyeong Lee, Jung‐Eun Park, Cheolmin Park
IF 26.8
Advanced Materials
The development of human-interactive sensing displays (HISDs) that simultaneously detect and visualize stimuli is important for numerous cutting-edge human-machine interface technologies. Therefore, innovative device platforms with optimized architectures of HISDs combined with novel high-performance sensing and display materials are demonstrated. This study comprehensively reviews the recent advances in HISDs, particularly the device architectures that enable scaling-down and simplifying the HISD, as well as material designs capable of directly visualizing input information received by various sensors. Various HISD platforms for integrating sensors and displays are described. HISDs consist of a sensor and display connected through a microprocessor, and attempts to assemble the two devices by eliminating the microprocessor are detailed. Single-device HISD technologies are highlighted in which input stimuli acquired by sensory components are directly visualized with various optical components, such as electroluminescence, mechanoluminescence and structural color. The review forecasts future HISD technologies that demand the development of materials with molecular-level synthetic precision that enables simultaneous sensing and visualization. Furthermore, emerging HISDs combined with artificial intelligence technologies and those enabling simultaneous detection and visualization of extrasensory information are discussed.
https://doi.org/10.1002/adma.202204964
Materials science
Interface (matter)
Human–machine system
Nanotechnology
Human–machine interface
Human–computer interaction
Computer science
Composite material
정부 과제
1
과제 전체보기
1
주관|
2021년 5월-2022년 9월
|70,000,000
소프트 재료 기반 고성능/신축성 이온 열전 에너지 하베스팅 소재
본 과제는 소프트 재료 내부 이온의 Soret 효과를 이용해 고성능/신축성 열전 에너지 하베스팅 소재를 만들고, 입을 수 있는 섬유 형태 열전 소자 플랫폼을 제시하는 연구임. 연구 목표는 Seebeck Coefficient Si > 20 mV K-1, Conductivity σi > 25 S m-1, Power factor PFi > 10 mW m-1K-2 및 Stretchability > 100 %를 만족하는 이온 열전 소재와 소자 기반 설계 달성임. 연구 내용은 하이드로젤/이온 혼합 소재, 상전이 거동 하이드로젤, 무기물 복합 소재의 열전·신축성 평가와, 섬유 하부 전극 형성 및 딥코팅 기반 소프트 이온 열전 박막 제작 수행임. 기대 효과는 체온 기반 웨어러블 열전 응용 기술 확보 및 특허 출원 등 선 기술 창출, 디스플레이·센서·E-Skin 융합 확장 기대됨.
이온열전 소재
소프트 재료
웨어러블 소자
체온을 활용하는 에너지 하베스팅