문원규 교수
Wonkyu Moon
포항공과대학교 기계공학과 · 공학
연구실 소개
문원규 교수의 연구실은 유비쿼터스 센서 기술과 생체 신호 감지 분야에서 핵심적인 연구를 수행하고 있습니다. 주로 유연하고 고감도의 압전 소재를 기반으로 한 피엘링거, 마이크로소형 센서 및 생체 분자 감지 기술을 개발하며, 특히 피에조전기 고분자(예: PBLG)와 PZT를 활용한 미세구조 센서의 설계 및 응용에 초점을 맞추고 있습니다. 이는 스마트 헬스케어, 웨어러블 기기, 생체모니터링 등에 응용 가능한 고성능 센서 기반의 인공지능 기반 인간-기계 상호작용 시스템을 구현하는 데 기여합니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Abstract 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
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
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
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
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