TY - JOUR
T1 - Sequentially Coated Wavy Nanowire Composite Transparent Electrode for Stretchable Solar Cells
AU - Kwon, Hyun Jeong
AU - Kim, Geon U.
AU - Lim, Chulhee
AU - Kim, Jai Kyeong
AU - Lee, Sang Soo
AU - Cho, Jinhan
AU - Koo, Hyung Jun
AU - Kim, Bumjoon J.
AU - Char, Kookheon
AU - Son, Jeong Gon
N1 - Publisher Copyright:
© 2023 American Chemical Society
PY - 2023/3/15
Y1 - 2023/3/15
N2 - Recent advances in fabricating stretchable and transparent electrodes have led to various techniques for establishing next-generation form-factor optoelectronic devices. Wavy Ag nanowire networks with large curvature radii are promising platforms as stretchable and transparent electrodes due to their high electrical conductivity and stretchability even at very high transparency. However, there are disadvantages such as intrinsic nonregular conductivity, large surface roughness, and nanowire oxidation in air. Here, we introduce electrically synergistic but mechanically independent composite electrodes by sequentially introducing conducting polymers and ionic liquids into the wavy Ag nanowire network to maintain the superior performance of the stretchable transparent electrode while ensuring overall conductivity, lower roughness, and long-term stability. In particular, plenty of ionic liquids can be incorporated into the uniformly coated conducting polymer so that the elastic modulus can be significantly lowered and sliding can occur at the nanowire interface, thereby obtaining the high mechanical stretchability of the composite electrode. Finally, as a result of applying the composite film as the stretchable transparent electrode of stretchable organic solar cells, the organic solar cell exhibits a high power conversion efficiency of 11.3% and 89% compared to the initial efficiency even at 20% tensile strain, demonstrating excellent stretching stability.
AB - Recent advances in fabricating stretchable and transparent electrodes have led to various techniques for establishing next-generation form-factor optoelectronic devices. Wavy Ag nanowire networks with large curvature radii are promising platforms as stretchable and transparent electrodes due to their high electrical conductivity and stretchability even at very high transparency. However, there are disadvantages such as intrinsic nonregular conductivity, large surface roughness, and nanowire oxidation in air. Here, we introduce electrically synergistic but mechanically independent composite electrodes by sequentially introducing conducting polymers and ionic liquids into the wavy Ag nanowire network to maintain the superior performance of the stretchable transparent electrode while ensuring overall conductivity, lower roughness, and long-term stability. In particular, plenty of ionic liquids can be incorporated into the uniformly coated conducting polymer so that the elastic modulus can be significantly lowered and sliding can occur at the nanowire interface, thereby obtaining the high mechanical stretchability of the composite electrode. Finally, as a result of applying the composite film as the stretchable transparent electrode of stretchable organic solar cells, the organic solar cell exhibits a high power conversion efficiency of 11.3% and 89% compared to the initial efficiency even at 20% tensile strain, demonstrating excellent stretching stability.
KW - conducting polymer
KW - ionic liquid
KW - stretchable composite electrode
KW - stretchable transparent electrode
KW - wavy Ag nanowire network
UR - http://www.scopus.com/inward/record.url?scp=85150396979&partnerID=8YFLogxK
U2 - 10.1021/acsami.3c00965
DO - 10.1021/acsami.3c00965
M3 - Article
C2 - 36857324
AN - SCOPUS:85150396979
SN - 1944-8244
VL - 15
SP - 13656
EP - 13667
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 10
ER -