Flexible, highly efficient all-polymer solar cells

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作者
Taesu Kim
Jae-Han Kim
Tae Eui Kang
Changyeon Lee
Hyunbum Kang
Minkwan Shin
Cheng Wang
Biwu Ma
Unyong Jeong
Taek-Soo Kim
Bumjoon J. Kim
机构
[1] Korea Advanced Institute of Science and Technology (KAIST),Department of Chemical and Biomolecular Engineering
[2] KI for the NanoCentury,Department of Mechanical Engineering
[3] KAIST,Department of Materials Science and Engineering
[4] KAIST,Department of Chemical and Biomedical Engineering
[5] POSTECH,undefined
[6] Advanced Light Source,undefined
[7] Lawrence Berkeley National Laboratory,undefined
[8] Florida State University,undefined
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摘要
All-polymer solar cells have shown great potential as flexible and portable power generators. These devices should offer good mechanical endurance with high power-conversion efficiency for viability in commercial applications. In this work, we develop highly efficient and mechanically robust all-polymer solar cells that are based on the PBDTTTPD polymer donor and the P(NDI2HD-T) polymer acceptor. These systems exhibit high power-conversion efficiency of 6.64%. Also, the proposed all-polymer solar cells have even better performance than the control polymer-fullerene devices with phenyl-C61-butyric acid methyl ester (PCBM) as the electron acceptor (6.12%). More importantly, our all-polymer solar cells exhibit dramatically enhanced strength and flexibility compared with polymer/PCBM devices, with 60- and 470-fold improvements in elongation at break and toughness, respectively. The superior mechanical properties of all-polymer solar cells afford greater tolerance to severe deformations than conventional polymer-fullerene solar cells, making them much better candidates for applications in flexible and portable devices.
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