4.6 Review

Supramolecular Control of Singlet Oxygen Generation

期刊

MOLECULES
卷 26, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/molecules26092673

关键词

singlet oxygen; supramolecular chemistry; cavitands; cucurbituril; cyclodextrin; calixarene; singlet oxygen generation (SOG); photosensitizer (PS); oxidation; photodynamic therapy (PDT); near IR (NIR)

资金

  1. Nebraska Department of Economic Development/Shabri LLC [20-01-030]
  2. National Institute of General Medical Science of the National Institutes of Health (NIH) [GM103427]

向作者/读者索取更多资源

This passage discusses the historical background, applications, and research progress of singlet oxygen generation through photosensitized excitation of molecular oxygen. It highlights the impact of molecular structure control through supramolecular photochemistry on this reaction.
Singlet oxygen (O-1(2)) is the excited state electronic isomer and a reactive form of molecular oxygen, which is most efficiently produced through the photosensitized excitation of ambient triplet oxygen. Photochemical singlet oxygen generation (SOG) has received tremendous attention historically, both for its practical application as well as for the fundamental aspects of its reactivity. Applications of singlet oxygen in medicine, wastewater treatment, microbial disinfection, and synthetic chemistry are the direct results of active past research into this reaction. Such advancements were achieved through design factors focused predominantly on the photosensitizer (PS), whose photoactivity is relegated to self-regulated structure and energetics in ground and excited states. However, the relatively new supramolecular approach of dictating molecular structure through non-bonding interactions has allowed photochemists to render otherwise inactive or less effective PSs as efficient O-1(2) generators. This concise and first of its kind review aims to compile progress in SOG research achieved through supramolecular photochemistry in an effort to serve as a reference for future research in this direction. The aim of this review is to highlight the value in the supramolecular photochemistry approach to tapping the unexploited technological potential within this historic reaction.

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