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Kyoung-Ho Ha

Korea Advanced Institute of Science and Technology · Engineering

About the Lab

Professor Kyoung-Ho Ha's research lab specializes in the development of advanced flexible and stretchable electronic systems for biomedical and human-machine interface applications. The lab focuses on designing novel nanomaterial-based sensors and actuators with high sensitivity, biocompatibility, and mechanical robustness, particularly for wearable and implantable health monitoring. Key research directions include capacitive pressure sensors with hybrid response mechanisms, ultrathin graphene-based e-tattoos for unobtrusive physiological sensing, and haptic feedback systems that mimic natural touch. The lab also explores thermal characterization techniques for optoelectronic devices, demonstrating a multidisciplinary approach bridging materials science, electronics, and biomedicine.

flexible electronicswearable sensorsbiomedical deviceshaptic interfacesnanomaterials

Research Overview

Papers
62
Total Citations
1,931
Papers (5y)
28
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
28total
2021
2022
2023
2024
2025
Citations per year (5y)
1,202total
20212022202320242025

Selected Papers

15
1
Article|428 citations·2020
All-solid-state spatial light modulator with independent phase and amplitude control for three-dimensional LiDAR applications
Junghyun Park, Byung Gil Jeong, Sun Il Kim, Duhyun Lee, Jung-Woo Kim, Changgyun Shin, Chang Bum Lee, Tatsuhiro Otsuka, Jisoo Kyoung, Sangwook Kim, Ki‐Yeon Yang, Yong-Young Park
SJR Q1Nature Nanotechnology
Electronic, Optical and Magnetic MaterialsMaterials Science
2
Article|343 citations·2021
Highly Sensitive Capacitive Pressure Sensors over a Wide Pressure Range Enabled by the Hybrid Responses of a Highly Porous Nanocomposite
Kyoungho Ha, Weiyi Zhang, Hongwoo Jang, Seung-Min Kang, Liu Wang, Philip Tan, Hochul Hwang, Nanshu Lu
SJR Q1Advanced MaterialsOA

Abstract Past research aimed at increasing the sensitivity of capacitive pressure sensors has mostly focused on developing dielectric layers with surface/porous structures or higher dielectric constants. However, such strategies have only been effective in improving sensitivities at low pressure ranges (e.g., up to 3 kPa). To overcome this well‐known obstacle, herein, a flexible hybrid‐response pressure sensor (HRPS) composed of an electrically conductive porous nanocomposite (PNC) laminated wit

Biomedical EngineeringEngineering
3
Article|234 citations·2022
Soft Capacitive Pressure Sensors: Trends, Challenges, and Perspectives
Kyoungho Ha, Heeyong Huh, Zhengjie Li, Nanshu Lu
SJR Q1ACS Nano

Soft pressure sensors are critical components of e-skins, which are playing an increasingly significant role in two burgeoning fields: soft robotics and bioelectronics. Capacitive pressure sensors (CPS) are popular given their mechanical flexibility, high sensitivity, and signal stability. After two decades of rapid development, e-skins based on soft CPS are able to achieve human-skin-like softness and sensitivity. However, there remain two major roadblocks in the way for practical application o

Biomedical EngineeringEngineering
4
Article|176 citations·2021
Wearable and Implantable Soft Bioelectronics: Device Designs and Material Strategies
Sung‐Hyuk Sunwoo, Kyoungho Ha, Sangkyu Lee, Nanshu Lu, Dae‐Hyeong Kim
SJR Q1Annual Review of Chemical and Biomolecular Engineering

High-performance wearable and implantable devices capable of recording physiological signals and delivering appropriate therapeutics in real time are playing a pivotal role in revolutionizing personalized healthcare. However, the mechanical and biochemical mismatches between rigid, inorganic devices and soft, organic human tissues cause significant trouble, including skin irritation, tissue damage, compromised signal-to-noise ratios, and limited service time. As a result, profuse research effort

Biomedical EngineeringEngineering
5
Article|117 citations·2022
Graphene e-tattoos for unobstructive ambulatory electrodermal activity sensing on the palm enabled by heterogeneous serpentine ribbons
Hongwoo Jang, Kaan Sel, Eunbin Kim, Sangjun Kim, Xiangxing Yang, Seung-Min Kang, Kyoungho Ha, Rebecca Wang, Yifan Rao, Roozbeh Jafari, Nanshu Lu
SJR Q1Nature CommunicationsOA

Electrodermal activity (EDA) is a popular index of mental stress. State-of-the-art EDA sensors suffer from obstructiveness on the palm or low signal fidelity off the palm. Our previous invention of sub-micron-thin imperceptible graphene e-tattoos (GET) is ideal for unobstructive EDA sensing on the palm. However, robust electrical connection between ultrathin devices and rigid circuit boards is a long missing component for ambulatory use. To minimize the well-known strain concentration at their i

Biomedical EngineeringEngineering
6
Article|89 citations·2024
Bioelastic state recovery for haptic sensory substitution
Matthew T. Flavin, Kyoungho Ha, Zengrong Guo, Shupeng Li, Jin‐Tae Kim, Tara Saxena, Dimitrios Simatos, Fatimah Al-Najjar, Yuxuan Mao, Shishir Bandapalli, Chengye Fan, Dongjun Bai
SJR Q1Nature
Cognitive NeuroscienceNeuroscience
7
Article|68 citations·2005
Measurement of junction temperature in GaN-based laser diodes using voltage-temperature characteristics
Han‐Youl Ryu, Kyoungho Ha, J. H. Chae, Okhyun Nam, Yong-Jo Park
SJR Q1Applied Physics Letters

We present a method to determine junction temperature in GaN-based laser diodes (LDs) for simple, fast, and reliable characterization of thermal properties. The large change of forward operation voltage with temperature in GaN laser diodes is advantageously used to measure junction temperature. Using this method, we compare junction temperature of LD structures with different substrates and chip mounting methods. It is found that the junction temperature can be reduced considerably by employing

Condensed Matter PhysicsPhysics and Astronomy
8
Article|67 citations·2025
Full freedom-of-motion actuators as advanced haptic interfaces
Kyoungho Ha, Jae‐Young Yoo, Shupeng Li, Yuxuan Mao, S. Xu, Hongyuan Qi, Hanbing Wu, Chengye Fan, Hanyin Yuan, Jin‐Tae Kim, Matthew T. Flavin, Seonggwang Yoo
SJR Q1Science

The sense of touch conveys critical environmental information, facilitating object recognition, manipulation, and social interaction, and can be engineered through haptic actuators that stimulate cutaneous receptors. An unfulfilled challenge lies in haptic interface technologies that can engage all the various mechanoreceptors in a programmable, spatiotemporal fashion across large areas of the body. Here, we introduce a small-scale actuator technology that can impart omnidirectional, superimposa

Cognitive NeuroscienceNeuroscience
9
Article|54 citations·2024
Stretchable hybrid response pressure sensors
Kyoungho Ha, Zhengjie Li, Sangjun Kim, Heeyong Huh, Zheliang Wang, Hongyang Shi, Charles Block, Sarnab Bhattacharya, Nanshu Lu
SJR Q1Matter
Biomedical EngineeringEngineering
10
Article|45 citations·2022
Two‐dimensional beam steering with tunable metasurface in infrared regime
Sun Il Kim, Junghyun Park, Byung Gil Jeong, Duhyun Lee, Ki‐Yeon Yang, Yongyoung Park, Kyoungho Ha, Hyuck Choo
SJR Q1NanophotonicsOA

Abstract Tunable metasurfaces can change the optical properties of incident light at will such as amplitude, phase, and polarization in a time‐dependent fashion. Ultrafast switching speed and the ability for the pixel size reduction of the tunable metasurface can allow various applications such as light detection and ranging, interferometric sensors, and free space optical communications, to name a few. Although there have been successful demonstrations of the wavefront shaping using the tunable

Electronic, Optical and Magnetic MaterialsMaterials Science
11
Article|27 citations·2014
Bulk-Si photonics technology for DRAM interface [Invited]
Hyunil Byun, J. K. Bok, Kwansik Cho, Keunyeong Cho, Hanmei Choi, Jin-Yong Choi, Sanghun Choi, Sangdeuk Han, Seokyong Hong, Seok-Hun Hyun, Taejin Jeong, Ho-Chul Ji
SJR Q1Photonics Research

We present photonics technology based on a bulk-Si substrate for cost-sensitive dynamic random-access memory (DRAM) optical interface application. We summarize the progress on passive and active photonic devices using a local-crystallized Si waveguide fabricated by solid phase epitaxy or laser-induced epitaxial growth on bulk-Si substrate. The process of integration of a photonic integrated circuit (IC) with an electronic IC is demonstrated using a 65 nm DRAM periphery process on 300 mm wafers t

Electrical and Electronic EngineeringEngineering
12
Article|27 citations·2018
O-band DFB laser heterogeneously integrated on a bulk-silicon platform
Dongjae Shin, Jung-Ho Cha, Sunggu Kim, Y. H. Shin, Kwansik Cho, Kyoungho Ha, Gitae Jeong, Hyeongsun Hong, Kyupil Lee, Ho-Kyu Kang
SJR Q1Optics ExpressOA

An O-band DFB laser heterogeneously integrated on bulk-silicon platform is presented. A high wall plug efficiency of over 8% up to 70°C is achieved due to efficient heat dissipation from III/V active region to silicon platform. The single-mode operation is maintained in a wide current range with side-mode suppression ratio over 45dB. This result completes the optical device library suite for the bulk-silicon platform used in most semiconductor products.

Electrical and Electronic EngineeringEngineering
13
Article|27 citations·2019
Stretchability of PMMA-supported CVD graphene and of its electrical contacts
Hongwoo Jang, Zhaohe Dai, Kyoungho Ha, Shideh Kabiri Ameri, Nanshu Lu
SJR Q12D Materials

Abstract The remarkable mechanical robustness and excellent electrical/thermal properties make graphene a promising candidate for future flexible, stretchable and bio-integrated electronics. In practice, many soft electronics such as the graphene electronic tattoos (GETs) demand the chemical vapor deposited (CVD) graphene to be supported by a deformable substrate. Moreover, various conductive overlayers need to directly laminate on graphene to make electrical contacts. To investigate the mechani

Materials ChemistryMaterials Science
14
Article|19 citations·2020
Single-Chip Beam Scanner with Integrated Light Source for Real-Time Light Detection and Ranging
Jisan Lee, Dongjae Shin, Bongyong Jang, Hyunil Byun, Changbum Lee, Changgyun Shin, Inoh Hwang, Dongshik Shim, Eunkyung Lee, Jinmyung Kim, Kyunghyun Son, Tatsuhiro Otsuka

For the first time to our knowledge, we present a single-chip solution for a solid-state 2D beam scanner achieving 10-m light detection and ranging (LIDAR) operation at 20 frames per second (fps). The beam scanner is integrated with a fully functional 32-channel optical phased array (OPA), 36 optical amplifiers, and a tunable laser, all on a 7.5×3-mm <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</sup> single chip fabricated using III-V-on-silico

Electrical and Electronic EngineeringEngineering
15
Article|19 citations·2020
A gain-enhanced silicon-photonic optical phased array with integrated O-band amplifiers for 40-m ranging and 3D scan
Hyunil Byun, Jisan Lee, Bongyong Jang, Changbum Lee, Eunkyung Lee, Inoh Hwang, Changgyun Shin, Dongjae Shin, Dongshik Shim, Tatsuhiro Otsuka, Sungwoo Hwang, Hyuck Choo
Conference on Lasers and Electro-Optics

For the first time, we demonstrate 40-m range detection and 3D depth scan up to 20 m using a silicon-photonic optical phased array with integrated amplifiers, promising a highperformance solid-state light-detection and ranging (LiDAR) system.

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringBiomedical EngineeringElectronic, Optical and Magnetic MaterialsCondensed Matter PhysicsMechanics of MaterialsCognitive Neuroscience

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