Seungse Cho
Engineering · Purdue University West Lafayette
Publications
29
Citations
3,487
Est. group size
~3
Recurring co-author estimate
Active years
11
Publishing since 2015
Seungse Cho's research focuses on soft, stretchable electronic materials and devices, such as flexible sensors, electronic skins, stretchable loudspeakers, and transparent conductive electrodes made from materials like silver nanowires and conducting polymers. Much of this work aims to create wearable and skin-like devices that can sense touch, sound, and other physical signals for use in human-machine interfaces and health monitoring. The research combines materials science, nanofabrication, and device engineering to make electronics that are flexible, stretchable, and sometimes self-healing or biodegradable.
Publication output rose to a peak around 2018-2019 and has since settled into a steadier, somewhat lower pace of about 2-4 papers per year through 2024.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Soft Sensors and Actuators for Wearable Human–Machine Interfaces
Chemical Reviews · 2024
- Low-Voltage Stretchable Electroluminescent Loudspeakers with Synchronous Sound and Light Generation
ACS Applied Materials & Interfaces · 2023
- Frequency-selective acoustic and haptic smart skin for dual-mode dynamic/static human-machine interface
Science Advances · 2022
- Ultra-stretchable yet tough, healable, and biodegradable triboelectric devices with microstructured and ionically crosslinked biogel
Nano Energy · 2022
- Stretchable Electroluminescent Devices: Highly Stretchable, Conductive Polymer Electrodes with a Mixed AgPdCu and PTFE Network Interlayer for Stretchable Electronics (Adv. Mater. Interfaces 3/2021)
Advanced Materials Interfaces · 2021
- Silver Nanowire Transparent Electrodes for Soft Optoelectronic and Electronic Devices
Scholarworks@UNIST (Ulsan National Institute of Science and Technology) · 2021
- Highly Stretchable Sound‐in‐Display Electronics Based on Strain‐Insensitive Metallic Nanonetworks
Advanced Science · 2020
- Highly Transparent, Flexible, and Self-Healable Thermoacoustic Loudspeakers
ACS Applied Materials & Interfaces · 2020
- Highly Stretchable, Conductive Polymer Electrodes with a Mixed AgPdCu and PTFE Network Interlayer for Stretchable Electronics
Advanced Materials Interfaces · 2020
- Mimicking Human and Biological Skins for Multifunctional Skin Electronics
Advanced Functional Materials · 2019
- A Hierarchical Nanoparticle‐in‐Micropore Architecture for Enhanced Mechanosensitivity and Stretchability in Mechanochromic Electronic Skins
Advanced Materials · 2019
- Near-Field Electrospinning for Three-Dimensional Stacked Nanoarchitectures with High Aspect Ratios
Nano Letters · 2019
- Solution‐Processable, High‐Performance Flexible Electroluminescent Devices Based on High‐<i>k</i> Nanodielectrics
Advanced Functional Materials · 2019
- A Multi-Functional Physiological Hybrid-Sensing E-Skin Integrated Interface for Wearable IoT Applications
IEEE Transactions on Biomedical Circuits and Systems · 2019
- Flexible Ferroelectric Sensors with Ultrahigh Pressure Sensitivity and Linear Response over Exceptionally Broad Pressure Range
ACS Nano · 2018
- Advanced Materials×4
- ACS Nano×3
- Science Advances×3
- ACS Applied Materials & Interfaces×3
- Advanced Functional Materials×2
- Shujia Xu
Engineering · Purdue University West Lafayette
- Tianhao Yu
Engineering · Purdue University West Lafayette
- Alex Chortos
Engineering · Purdue University West Lafayette
- Wenzhuo Wu
Engineering · Purdue University West Lafayette
- Quan Khanh Luu
Engineering · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
Claim or correct this profile