Pressure-Promoted Triplet-Pair Separation in Singlet-Fission TIPS-Pentacene Nanofilms Revealed by Ultrafast Spectroscopy

Author:

Wang Lu1,Zhu Ruixue2,Pu Ruihua1,Liu Weimin1,Lu Yang34ORCID,Weng Tsu-Chieu12

Affiliation:

1. School of Physical Science and Technology, Shanghai Tech University, Shanghai 201210, China

2. Center for Transformative Science, Shanghai Tech University, Shanghai 201210, China

3. Center for High Pressure Science & Technology Advanced Research, Shanghai 201203, China

4. Shanghai Key Laboratory of Material Frontiers Research in Extreme Environments (MFree), Shanghai Advanced Research in Physical Sciences (SHARPS), Shanghai 201203, China

Abstract

Singlet fission (SF), as an effective way to break through the Shockley–Queisser limit, can dramatically improve energy conversion efficiency in solar cell areas. The formation, separation, and relaxation of triplet-pair excitons directly affect the triplet yield, especially triplet-pair separation; thus, how to enhance the triplet-pair separation rate becomes one of the key points to improve SF efficiency; the decay mechanism where the singlet state is converted into two triplet states is significant for the study of the SF mechanism. Herein, we employ ultrafast transient absorption spectroscopy to study the singlet-fission process of nano-amorphous 6, 13-bis(triisopropylsilylethynyl)-Pentacene (TIPS-pentacene) films in a diamond anvil cell (DAC). A kinetics model related to the structural geometric details, as well as an evaluation of the pressure manipulation impacts, is demonstrated based on the experimental results. The results indicate that pressure manipulation enhanced the triplet-pair separation rates of SF-based materials according to their structural micro-environmental improvement when compressed in DAC, while the triplet-exciton transportation lifetime is prolonged. This work shows that pressure may effectively optimize the structural disorder of SF materials, which were found to improve triplet-pair separation efficiency and potentially offer an effective way to further improve SF efficiency.

Funder

National Key Research and Development Program of the Ministry of Science and Technology of China

National Natural Science Foundation of China

ShanghaiTech University start-up funding and Shanghai Pujiang Program

Shanghai Key Laboratory of Material Frontiers Research in Extreme Environments

Shanghai Science and Technology Committee, China

Analytical Instrumentation Center, supported by SPST of ShanghaiTech University

Publisher

MDPI AG

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