Faculty Research Profile

물리학과

박형렬

부교수Hyeong-Ryeol Park

박형렬

Hyeong-Ryeol Park

Biography

학력

2006 – 2012 서울대 물리학부 이학박사
1999 – 2006 서울대 물리학부 이학학사

주요 경력

2023 – 현재 UNIST 물리학과 부교수
2019 – 2023 UNIST 물리학과 조교수
2016 – 2019 충북대 물리학과 조교수
2013 – 2016 미네소타대 ECE postdoc
2012 – 2013 서울대 물리학부 postdoc









수상/학회/외부활동

- 제30회 과학기술우수논문상, 과학기술총연합회, Jul. 3 (2020)
- OSK Rising Star 30 award, Optical Society of Korea, Feb. 2 (2020)

Research

초고속 나노포토닉스 연구실

Laboratory for ultrafast and nano-photonics

Mid-infrared to terahertz spectrum, ranging from 5 μm to 5 mm in wavelength, is the focus of basic research in solid-state physics, chemistry, materials science, as well as applications in next-generation communications, homeland security, biosensing, and medical imaging. This frequency range is at the intersection between photonics and electronics, presenting tremendous opportunities to probe and harness fundamental light-matter interactions. The emerging fields of plasmonics and metamaterials have shown new possibilities to boost such light-matter interactions using engineered nanostructures. To overcome the dimension mismatch between the long-wavelength radiations and the nanostructures, new lithography techniques that fabricate an array of metal gaps of nanometer-to-Ångstrom scale have been recently developed. These next-generation nanostructures will have a great impact on the advancement of field enhancement and confinement toward the next level of applications as the following:

(1) Terahertz (THz) absorption spectroscopy for sensing
– Ultra-sensitive THz detection and fingerprinting of biomolecules in water
– THz dynamics of two-dimensional water layer

(2) Nanofabrication for large-area nano cavity array operating at broad wavelength range
– Machine learning-based inverse design of terahertz nano-cavities
– Wafer-scale nanofabrication for metal nano-cavities at sub-nanometer resolution

(3) Ultrafast spectroscopy with optical (or terahertz) pump-probe measurements
– Nanogap-enhanced magneto-plasmonic device
– Ultrafast dynamics of ferroelectric polarization in hafnia
– Ultrafast dynamics of the phase-transition materials combined with nano-cavities
– 2D & 3D topological insulators combined with THz nanogap systems

Mid-infrared to terahertz spectrum, ranging from 5 μm to 5 mm in wavelength, is the focus of basic research in solid-state physics, chemistry, materials science, as well as applications in next-generation communications, homeland security, biosensing, and medical imaging. This frequency range is at the intersection between photonics and electronics, presenting tremendous opportunities to probe and harness fundamental light-matter interactions. The emerging fields of plasmonics and metamaterials have shown new possibilities to boost such light-matter interactions using engineered nanostructures. To overcome the dimension mismatch between the long-wavelength radiations and the nanostructures, new lithography techniques that fabricate an array of metal gaps of nanometer-to-Ångstrom scale have been recently developed. These next-generation nanostructures will have a great impact on the advancement of field enhancement and confinement toward the next level of applications as the following:

(1) Terahertz (THz) absorption spectroscopy for sensing
– Ultra-sensitive THz detection and fingerprinting of biomolecules in water
– THz dynamics of two-dimensional water layer

(2) Nanofabrication for large-area nano cavity array operating at broad wavelength range
– Machine learning-based inverse design of terahertz nano-cavities
– Wafer-scale nanofabrication for metal nano-cavities at sub-nanometer resolution

(3) Ultrafast spectroscopy with optical (or terahertz) pump-probe measurements
– Nanogap-enhanced magneto-plasmonic device
– Ultrafast dynamics of ferroelectric polarization in hafnia
– Ultrafast dynamics of the phase-transition materials combined with nano-cavities
– 2D & 3D topological insulators combined with THz nanogap systems

초고속 나노포토닉스 연구실

연구분야

Optics, Ultrafast laser, nanostructure, nano-fabrications, Terahertz/Mid-IR imaging and spectroscopy

Optics, Ultrafast laser, nanostructure, nano-fabrications, Terahertz/Mid-IR imaging and spectroscopy

연구주제

Optics, Ultrafast laser, nanostructure, nano-fabrications, Terahertz/Mid-IR imaging and spectroscopy, ferroelectrics

Optics, Ultrafast laser, nanostructure, nano-fabrications, Terahertz/Mid-IR imaging and spectroscopy, ferroelectrics

국가연구개발사업 기술 분류체계

국가과학기술표준분류

NB. 물리학 > NB05. 광학 > NB0509. 나노 광학

Outputs

논문

- Science Advances, “Suppressed terahertz dynamics of water confined in nanometer gaps", Hyosim Yang, Gangseon Ji, Min Choi, Seondo Park, Hyeonjun An, Hyoung-Taek Lee, Joonwoo Jeong, Yun Daniel Park, Kyungwan Kim, Noejung Park, Jeeyoon Jeong, Dai-Sik Kim, Hyeong-Ryeol Park, Apr. 2024.

- Nano Letters, “More than 30,000-fold field enhancement of terahertz nanoresonators enabled by rapid inverse design”, Hyoung-Taek Lee, Jeonghoon Kim, Joon Sue Lee, Mina Yoon, Hyeong-Ryeol Park, Dec. 2023.

- Advanced Optical Materials, "Terahertz biochemical molecule-specific sensors", Minah Seo, and Hyeong-Ryeol Park, Feb. 2020.

특허

1. "강유전체 기반 대면적 고집적 비휘발성 광 메모리 구조 및 제조 방법(Fabrication Methods and Design of Large-Area, High density, Non-Volatile optical storage based on ferroelectric materials)", 박형렬, 이준희, 채승철, 엄선혜, 지강선, 손창희, 김대식, 박노정, 송명섭, 이형택, 김계현, PCT/KR2025/009980 (2025.07.09.)

2. "딥러닝에 기초한 나노 광소자 역설계 방법 및 장치(Method and apparatus for reverse engineering nano-optical devices based on deep learning)", 박형렬, 이형택, 김정훈, 10-2023-0091822 (2023.07.14.)