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Tuning the singlet-triplet energy gap: a unique approach to efficient photosensitizers with aggregation-induced emission (AIE) characteristics

Chemical Science · 2015 · Vol. 6(10) · pp. 5824–5830
Shidang XuYouyong YuanXiaolei CaiChong‐Jing ZhangFang HuJing LiangGuanxin ZhangDeqing ZhangBin Liu

Abstract

The efficiency of the intersystem crossing process can be improved by reducing the energy gap between the singlet and triplet excited states (Δ<i>E</i><sub>ST</sub>), which offers the opportunity to improve the yield of the triplet excited state. Herein, we demonstrate that modulation of the excited states is also an effective strategy to regulate the singlet oxygen generation of photosensitizers. Based on our previous studies that photosensitizers with aggregation-induced emission characteristics (AIE) showed enhanced fluorescence and efficient singlet oxygen production in the aggregated state, a series of AIE fluorogens such as <b>TPDC</b>, <b>TPPDC</b> and <b>PPDC</b> were synthesized, which showed Δ<i>E</i><sub>ST</sub> values of 0.48, 0.35 and 0.27 eV, respectively. A detailed study revealed that <b>PPDC</b> exhibited the highest singlet oxygen efficiency (0.89) as nanoaggregates, while <b>TPDC</b> exhibited the lowest efficiency (0.28), inversely correlated with their Δ<i>E</i><sub>ST</sub> values. Due to their similar optical properties, <b>TPDC</b> and <b>PPDC</b> were further encapsulated into nanoparticles (NPs). Subsequent surface modification with cell penetrating peptide (TAT) yielded <b>TAT-TPDC NPs</b> and <b>TAT-PPDC NPs</b>. As a result of the stronger singlet oxygen generation, <b>TAT-PPDC NPs</b> showed enhanced cancer cell ablation as compared to <b>TAT-TPDC NPs</b>. Fine-tuning of the singlet-triplet energy gap is thus proven to be an effective new strategy to generate efficient photosensitizers for photodynamic therapy.

Luminescence and Fluorescent MaterialsPerovskite Materials and ApplicationsOrganic Light-Emitting Diodes ResearchIntersystem crossingSinglet fissionExcited stateSinglet statePhotochemistryAggregation-induced emissionYield (engineering)Triplet stateBand gapChemistry

Funding

  • National Research Foundation Singapore
  • Ministry of Education - Singapore
  • Singapore-MIT Alliance for Research and Technology Centre
  • Institute of Materials Research and Engineering
Citations
517
FWCI
14.41
field-weighted impact
References
44
Percentile
99%
vs. same field & year
Citations per year
References
Aggregation-induced emission: phenomenon, mechanism and applications
Chemical Communications · 2009 · 4,010 citations
Bioprobes Based on AIE Fluorogens
Accounts of Chemical Research · 2013 · 1,783 citations
Aggregation-induced emission of 1-methyl-1,2,3,4,5-pentaphenylsilole
Chemical Communications · 2001 · 8,071 citations
Photosensitized singlet oxygen and its applications
Coordination Chemistry Reviews · 2002 · 2,860 citations
Aggregation-induced emission
Chemical Society Reviews · 2011 · 6,177 citations
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Tuning the singlet-triplet energy gap: a unique approach to efficient photosensitizers with aggregation-induced emission (AIE) characteristics · Scinovex