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Molecular Basis of the Chemiluminescence Mechanism of Luminol
Authors:Dr. Angelo Giussani  Dr. Pooria Farahani  Daniel Martínez-Muñoz  Dr. Marcus Lundberg  Prof. Dr. Roland Lindh  Dr. Daniel Roca-Sanjuán
Affiliation:1. Institut de Ciència Molecular, Universitat de València, P.O. Box 22085, València, Spain;2. Department of Theoretical Chemistry & Biology, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), KTH Royal Institute of Technology, 10691 Stockholm, Sweden;3. Department of Chemistry-Ångström Laboratory, Uppsala University, P.O. Box 538, 75121 Uppsala, Sweden
Abstract:Light emission from luminol is probably one of the most popular chemiluminescence reactions due to its use in forensic science, and has recently displayed promising applications for the treatment of cancer in deep tissues. The mechanism is, however, very complex and distinct possibilities have been proposed. By efficiently combining DFT and CASPT2 methodologies, the chemiluminescence mechanism has been studied in three steps: 1) luminol oxygenation to generate the chemiluminophore, 2) a chemiexcitation step, and 3) generation of the light emitter. The findings demonstrate that the luminol double-deprotonated dianion activates molecular oxygen, diazaquinone is not formed, and the chemiluminophore is formed through the concerted addition of oxygen and concerted elimination of nitrogen. The peroxide bond, in comparison to other isoelectronic chemical functionalities (−NH−NH−, −N−N−, and −S−S−), is found to have the best chemiexcitation efficiency, which allows the oxygenation requirement to be rationalized and establishes general design principles for the chemiluminescence efficiency. Electron transfer from the aniline ring to the OO bond promotes the excitation process to create an excited state that is not the chemiluminescent species. To produce the light emitter, proton transfer between the amino and carbonyl groups must occur; this requires highly localized vibrational energy during chemiexcitation.
Keywords:CASPT2  cancer  density functional calculations  electron transfer  chemiluminescence  reaction mechanisms
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