TY - JOUR
T1 - Elastic–Plastic Fully π-Conjugated Polymer with Excellent Energy Dissipation Capacity for Ultra-Deep-Blue Flexible Polymer Light-Emitting Diodes with CIEy = 0.04
AU - Chen, Wenyu
AU - Yu, Ningning
AU - Gong, Huaqiang
AU - Li, Mengyuan
AU - Xu, Weifeng
AU - Zhuo, Zhiqiang
AU - Sun, Zhiyang
AU - Ni, Mingjian
AU - Huang, Wenxin
AU - Yang, Jing
AU - Lin, Yingru
AU - Wang, Lizhi
AU - Li, Hao
AU - Liang, Xinyu
AU - Sun, Ning
AU - Sun, Lili
AU - Bai, Lubing
AU - Han, Yamin
AU - Tao, Youtian
AU - Xu, Man
AU - Yin, Chengrong
AU - An, Xiang
AU - Lin, Jinyi
AU - Huang, Wei
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/7/25
Y1 - 2024/7/25
N2 - Emerging intrinsically flexible fully π-conjugated polymers (FπCPs) are a promising functional material for flexible optoelectronics, attributed to their potential interchain interpenetration and entanglement. However, the challenge remains in obtaining elastic–plastic FπCPs with intrinsic robust optoelectronic property and excellent long-term and cycling deformation stability simultaneously for applications in deep-blue flexible polymer light-emitting diodes (PLEDs). This study, demonstrates a series of elastic-plastic FπCPs (P1–P4) with an excellent energy dissipation capacity via side-chain internal plasticization for the ultra-deep-blue flexible PLEDs. First, the freestanding P1 film exhibited a maximum fracture strain of 34.6%. More interestingly, the elastic behavior is observed with a low strain (≤10%), and the stretched film with a high deformation (>10%) attributed to plastic processing revealed the robust capacity to realize energy absorption and release. The elastic–plastic P1 film exhibits outstanding ultra-deep-blue emission, with an efficiency of 56.38%. Subsequently, efficient PLEDs are fabricated with an ultra-deep-blue emission of CIE (0.16, 0.04) and a maximum external quantum efficiency of 1.73%. Finally, stable and efficient ultra-deep-blue electroluminescence are obtained from PLEDs based on stretchable films with different strains and cycling deformations, suggesting excellent elastic–plastic behavior and deformation stability for flexible electronics.
AB - Emerging intrinsically flexible fully π-conjugated polymers (FπCPs) are a promising functional material for flexible optoelectronics, attributed to their potential interchain interpenetration and entanglement. However, the challenge remains in obtaining elastic–plastic FπCPs with intrinsic robust optoelectronic property and excellent long-term and cycling deformation stability simultaneously for applications in deep-blue flexible polymer light-emitting diodes (PLEDs). This study, demonstrates a series of elastic-plastic FπCPs (P1–P4) with an excellent energy dissipation capacity via side-chain internal plasticization for the ultra-deep-blue flexible PLEDs. First, the freestanding P1 film exhibited a maximum fracture strain of 34.6%. More interestingly, the elastic behavior is observed with a low strain (≤10%), and the stretched film with a high deformation (>10%) attributed to plastic processing revealed the robust capacity to realize energy absorption and release. The elastic–plastic P1 film exhibits outstanding ultra-deep-blue emission, with an efficiency of 56.38%. Subsequently, efficient PLEDs are fabricated with an ultra-deep-blue emission of CIE (0.16, 0.04) and a maximum external quantum efficiency of 1.73%. Finally, stable and efficient ultra-deep-blue electroluminescence are obtained from PLEDs based on stretchable films with different strains and cycling deformations, suggesting excellent elastic–plastic behavior and deformation stability for flexible electronics.
KW - elastic-plastic fully π-conjugated polymer
KW - excellent energy dissipation capacity
KW - flexible polymer light-emitting diodes
KW - side-chain internal plasticization
KW - ultra-deep-blue emission
UR - http://www.scopus.com/inward/record.url?scp=85195853217&partnerID=8YFLogxK
U2 - 10.1002/adma.202402708
DO - 10.1002/adma.202402708
M3 - 文章
C2 - 38837440
AN - SCOPUS:85195853217
SN - 0935-9648
VL - 36
JO - Advanced Materials
JF - Advanced Materials
IS - 30
M1 - 2402708
ER -