TY - JOUR
T1 - Bidirectional Zero Poisson's Ratio Elastomers with Self-Deformable Soft Mechanical Metamaterials for Stretchable Displays
AU - Choi, Jun Chan
AU - Jeong, Hoon Yeub
AU - Sun, Jae Hong
AU - Byun, Junghwan
AU - Oh, Jeongtaek
AU - Hwang, Seok Joon
AU - Lee, Phillip
AU - Lee, Dong Won
AU - Son, Jeong Gon
AU - Lee, Seunghyun
AU - Chung, Seungjun
N1 - Publisher Copyright:
© 2024 The Author(s). Advanced Functional Materials published by Wiley-VCH GmbH.
PY - 2024/12/23
Y1 - 2024/12/23
N2 - Stretchable displays, capable of reversible expansion, represent significant advancements in free-form display technologies. However, the high Poisson's ratio (ν) of elastomer substrates leads to unintended deformation under tensile strain, resulting in image warping. To address this, a meta-elastomer (ME) substrate with a bidirectional zero ν, incorporating a self-deformable soft mechanical metamaterial (MM) frame, is introduced. The ν of the ME is precisely programmed by the interaction between the deformation of the MM frame, which exhibits a negative ν, and the elastomer matrix, which has a positive ν. The soft MM frame, stiffer than the elastomer matrix, undergoes both structural deformation and length alteration during substrate tensile strain. This synergistic effect enables achieving a nearly bidirectional zero ν, thus overcoming the limitations of conventional tessellated rigid MM composites. Furthermore, the ME substrate, which is chemically cross-linked at the junction interface, demonstrates exceptional mechanical robustness, enduring over 180% stretching and more than 10 000 cycles. By counteracting the Poisson's effect, the ME substrate with an integrated pixel array ensures translational pixel movement along the tensile axis during bidirectional stretching, minimizing undesired pixel movement in other directions. The stretchable ME presents key advancements for implementing more stable and reliable stretchable display applications.
AB - Stretchable displays, capable of reversible expansion, represent significant advancements in free-form display technologies. However, the high Poisson's ratio (ν) of elastomer substrates leads to unintended deformation under tensile strain, resulting in image warping. To address this, a meta-elastomer (ME) substrate with a bidirectional zero ν, incorporating a self-deformable soft mechanical metamaterial (MM) frame, is introduced. The ν of the ME is precisely programmed by the interaction between the deformation of the MM frame, which exhibits a negative ν, and the elastomer matrix, which has a positive ν. The soft MM frame, stiffer than the elastomer matrix, undergoes both structural deformation and length alteration during substrate tensile strain. This synergistic effect enables achieving a nearly bidirectional zero ν, thus overcoming the limitations of conventional tessellated rigid MM composites. Furthermore, the ME substrate, which is chemically cross-linked at the junction interface, demonstrates exceptional mechanical robustness, enduring over 180% stretching and more than 10 000 cycles. By counteracting the Poisson's effect, the ME substrate with an integrated pixel array ensures translational pixel movement along the tensile axis during bidirectional stretching, minimizing undesired pixel movement in other directions. The stretchable ME presents key advancements for implementing more stable and reliable stretchable display applications.
KW - image distortion
KW - mechanical metamaterial
KW - stretchable display
KW - zero Poisson's ratio
UR - https://www.scopus.com/pages/publications/85197526743
U2 - 10.1002/adfm.202406725
DO - 10.1002/adfm.202406725
M3 - Article
AN - SCOPUS:85197526743
SN - 1616-301X
VL - 34
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 52
M1 - 2406725
ER -