4.6 Article

Photon Upconversion and Molecular Solar Energy Storage by Maximizing the Potential of Molecular Self-Assembly

Journal

LANGMUIR
Volume 32, Issue 47, Pages 12304-12322

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.6b03363

Keywords

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Funding

  1. JSPS [JP25220805, JP16H06513, JP26810036, JP26104529, JP16H00844, JP26390003]
  2. JST-CREST Development of the foundation for nano-interface technology
  3. JST-PREST Molecular technology and creation of new functions
  4. JSPS-NSF International Collaborations in Chemistry (ICC)
  5. Grants-in-Aid for Scientific Research [26390003, 16H06508, 16H00844] Funding Source: KAKEN

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The self-assembly of functional molecules into ordered molecular assemblies and the fulfillment of potentials unique to their nanotomesoscopic structures have been one of the central challenges in chemistry. This Feature Article provides an overview of recent progress in the field of molecular self-assembly with the focus on the triplet triplet annihilation-based photon upconversion (TTA-UC) and supramolecular storage of photon energy. On the basis of the integration of molecular self assembly and photon energy harvesting, triplet energy migration-based TTA-UC has been achieved in varied molecular systems. Interestingly, some molecular self-assemblies dispersed in solution or organogels revealed oxygen barrier properties, which allowed TTA-UC even under aerated conditions. The elements of molecular self-assembly were also introduced to the field of molecular solar thermal fuel, where reversible photoliquefaction of ionic crystals to ionic liquids was found to double the molecular storage capacity with the simultaneous pursuit of switching ionic conductivity. A future prospect in terms of innovating molecular self-assembly toward molecular systems chemistry is also discussed.

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