4.8 Article

Design Guidelines for Rigid Epoxy Resins with High Photon Upconversion Efficiency: Critical Role of Emitter Concentration

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 20, 页码 22771-22780

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c17021

关键词

photon upconversion; triplet-triplet annihilation; triplet energy migration; epoxy resin; emitter concentration

资金

  1. JSPS KAKENHI [JP20H02713, JP20K21211, JP20H05676]
  2. Sumitomo Foundation
  3. Ogasawara Foundation
  4. Nature Research Support Program, Sekisui Chemical Co. Ltd.

向作者/读者索取更多资源

This study achieves highly efficient triplet-triplet annihilation-based photon upconversion (TTA-UC) in rigid polymer materials by increasing the emitter concentration through the introduction of ionic liquid and polymerization sites. The high emitter concentration accelerates triplet diffusion and suppresses back energy transfer, effectively utilizing sensitized emitter triplets for TTA. This study provides important design guidelines for achieving efficient TTA-UC in rigid solid materials.
For the practical application of triplet-triplet annihilation-based photon upconversion (TTA-UC), the development of rigid, transparent, air-stable, and moldable materials with a high TTA-UC efficiency remains a challenging issue. In addition to the noncovalent introduction of ionic liquid emitters into the epoxy network, we covalently introduce emitters with polymerization sites to increase the emitter concentration to 35.6 wt %. A TTA-UC quantum yield Phi(UC) of 5.7% (theoretical maximum: 50%) or a TTA-UC efficiency eta(UC) of 11.4% (theoretical maximum: 100%) is achieved, which is the highest value ever achieved for a rigid polymer material. More importantly, the high emitter concentration speeds up the triplet diffusion and suppresses the back energy transfer from the emitter to sensitizer so that the sensitized emitter triplet can be effectively utilized for TTA. The generality of our finding is also confirmed for epoxy resins of similar emitter unit concentrations without the ionic liquid. This work provides important design guidelines for achieving highly efficient TTA-UC in rigid solid materials, which has been very difficult to achieve in the past. Furthermore, the solid-state TTA-UC exhibits high air stability, reflecting the high oxygen barrier performance of epoxy resins. The high moldability of epoxy resins allows the construction of upconversion materials with complex geometries at nano- to macroscopic scales.

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