Home > Press > Development of 'transparent stretchable substrate' without image distortion could revolutionize next-generation displays Overcoming: Poisson's ratio enables fully transparent, distortion-free, non-deformable display substrates
![]() |
| (Top) Distortion problems in elastomeric materials during stretching and distortion-free stretching (Bottom) Typical elastomer with Poisson's ratio of 0.5 (severe vertical contraction, left), and aligned fiber composite for controlling Poisson's ratio near 0 due to the high stiffness of fibers resisting vertical contraction under strained states (right). |
Abstract:
Stretchable display materials, which are gaining traction in the next-generation display market, have the advantage of being able to stretch and bend freely, but the limitations of existing materials have resulted in distorted screens and poor fit. General elastomeric substrates are prone to screen distortion due to the 'Poisson's ratio' phenomenon, in which stretching in one direction causes the screen to shrink in the vertical direction. In particular, electronics that are in close contact with the skin, such as wearable devices, are at risk of wrinkling or pulling on the skin during stretching and shrinking, resulting in poor fit and performance.
A research team led by Dr. Jeong Gon Son of the Korea Institute of Science and Technology (KIST) and Professor Yongtaek Hong of Seoul National University has developed a nanostructure-aligned stretchable substrate that dramatically lowers the Poisson's ratio. The research is notable for its ability to reduce the Poisson's ratio while maintaining transparency, solving the problems of screen distortion and light scattering at the same time.
The researchers achieved this by combining two key ideas. In the first, they utilized block copolymers, which are polymer blocks linked together to align the internal nanostructures. The block copolymer(SIBS) consists of a stiff 'polystyrene' (PS) and a softer 'polybutylene' (PIB), which can be arranged in one direction to maximize the difference in elasticity between the parallel and perpendicular directions to reduce shrinkage. While conventional elastomers have a Poisson's ratio of 0.4 to 0.5, the researchers have reduced it to a Poisson's ratio of 0.07 or less, which means that there is almost no shrinkage perpendicular to the substrate, even in the stretching direction, and screen distortion is greatly reduced.
The second idea was to introduce a shear-rolling process to align the nanostructures evenly across the substrate. It uses speed differences between rollers and stages to apply a uniform shear force at high temperatures. This process allowed the nanostructures to be reliably aligned on thick substrates without compromising transparency. In experiments, the researchers found that there was little longitudinal shrinkage, even when the substrate was stretched by more than 50% in the vertical direction.
The researchers applied the developed substrate to a real device and observed changes in the pixel arrangement. The conventional elastomeric substrate, when stretched by 50 percent, showed distortion with jagged spacing between pixels or stuck vertical pixels. The nanostructure-aligned substrate, on the other hand, had an even arrangement of pixels, resulting in an unbroken image and transparency without wrinkles or rough surfaces.
The new stretchable substrate is expected to be used as a core material in various fields such as next-generation displays, wearable electronics, and solar cells. In addition, the shear rolling process used in this study can be applied to other block copolymers and polymer films, making it a suitable technology for processing large areas in a simple manner.
"This research proposes a new method to develop a distortion-free and completely transparent stretchable substrate by precisely controlling the nanostructure, and the shear-rolling process to implement it can be easily applied to mass production and industrialization," said Dr. Jeong Gon Son of KIST. "We are currently conducting research to realize a real display device with no distortion even when tensile by transferring display light-emitting devices using this substrate."
####
About National Research Council of Science & Technology
KIST was established in 1966 as the first government-funded research institute in Korea. KIST now strives to solve national and social challenges and secure growth engines through leading and innovative research. For more information, please visit KIST’s website at https://eng.kist.re.kr/
This research was supported by the Ministry of Science and ICT (Minister Yoo Sang-im) KIST Major Project, Mid-Career Researcher Support Project (2022R1A2B5B02001597), and STEAM Project (RS-2024-00451691). The research results were published in the latest issue of the international journal Advanced materials (IF 27.4 JCR, top 2.4%).
For more information, please click here
Contacts:
Media Contact
Eunhye Bae
National Research Council of Science & Technology
Expert Contacts
Dr. Jeong Gon Son
Korea Institute of Science and Technology
Office: +82-2-958-5317
Sion, Park
Korea Institute of Science and Technology
Office: +82-2-958-6086
Copyright © National Research Council of Science & Technology
If you have a comment, please Contact us.Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.
| Related Links |
| Related News Press |
News and information
Quantum computer improves AI predictions April 17th, 2026
Flexible sensor gains sensitivity under pressure April 17th, 2026
A reusable chip for particulate matter sensing April 17th, 2026
Detecting vibrational quantum beating in the predissociation dynamics of SF6 using time-resolved photoelectron spectroscopy April 17th, 2026
Flexible Electronics
Flexible sensor gains sensitivity under pressure April 17th, 2026
Flexible electronics integrated with paper-thin structure for use in space January 17th, 2025
Beyond wires: Bubble technology powers next-generation electronics:New laser-based bubble printing technique creates ultra-flexible liquid metal circuits November 8th, 2024
Display technology/LEDs/SS Lighting/OLEDs
Spinel-type sulfide semiconductors to operate the next-generation LEDs and solar cells For solar-cell absorbers and green-LED source October 3rd, 2025
Wearable electronics
Breakthrough brings body-heat powered wearable devices closer to reality December 13th, 2024
Beyond wires: Bubble technology powers next-generation electronics:New laser-based bubble printing technique creates ultra-flexible liquid metal circuits November 8th, 2024
Nanofibrous metal oxide semiconductor for sensory face November 8th, 2024
Possible Futures
A fundamentally new therapeutic approach to cystic fibrosis: Nanobody repairs cellular defect April 17th, 2026
UC Irvine physicists discover method to reverse ‘quantum scrambling’ : The work addresses the problem of information loss in quantum computing system April 17th, 2026
Chip Technology
A reusable chip for particulate matter sensing April 17th, 2026
Metasurfaces smooth light to boost magnetic sensing precision January 30th, 2026
Discoveries
Quantum computer improves AI predictions April 17th, 2026
Flexible sensor gains sensitivity under pressure April 17th, 2026
A reusable chip for particulate matter sensing April 17th, 2026
Detecting vibrational quantum beating in the predissociation dynamics of SF6 using time-resolved photoelectron spectroscopy April 17th, 2026
Announcements
A fundamentally new therapeutic approach to cystic fibrosis: Nanobody repairs cellular defect April 17th, 2026
UC Irvine physicists discover method to reverse ‘quantum scrambling’ : The work addresses the problem of information loss in quantum computing system April 17th, 2026
Interviews/Book Reviews/Essays/Reports/Podcasts/Journals/White papers/Posters
A fundamentally new therapeutic approach to cystic fibrosis: Nanobody repairs cellular defect April 17th, 2026
UC Irvine physicists discover method to reverse ‘quantum scrambling’ : The work addresses the problem of information loss in quantum computing system April 17th, 2026
|
|
||
|
|
||
| The latest news from around the world, FREE | ||
|
|
||
|
|
||
| Premium Products | ||
|
|
||
|
Only the news you want to read!
Learn More |
||
|
|
||
|
Full-service, expert consulting
Learn More |
||
|
|
||