Mechanism and efficiency of photochemical transformation of ≡SiNNO• radicals grafted to activated Aerosil surface: Calculation of potential energy surface elements for the lower excited state of the radical

2008 ◽  
Vol 42 (6) ◽  
pp. 442-445
Author(s):  
V. I. Pergushov ◽  
M. Ya. Mel’nikov
2013 ◽  
Vol 110 (6) ◽  
Author(s):  
Elisabeth M. Bothschafter ◽  
Alexander Paarmann ◽  
Eeuwe S. Zijlstra ◽  
Nicholas Karpowicz ◽  
Martin E. Garcia ◽  
...  

2018 ◽  
Vol 130 (21) ◽  
pp. 6311-6315 ◽  
Author(s):  
Christopher R. Hall ◽  
Wesley R. Browne ◽  
Ben L. Feringa ◽  
Stephen R. Meech

2016 ◽  
Vol 195 ◽  
pp. 237-251 ◽  
Author(s):  
Rafał Szabla ◽  
Robert W. Góra ◽  
Mikołaj Janicki ◽  
Jiří Šponer

Photochemically created πσ* states were classified among the most prominent factors determining the ultrafast radiationless deactivation and photostability of many biomolecular building blocks. In the past two decades, the gas phase photochemistry of πσ* excitations was extensively investigated and was attributed to N–H and O–H bond fission processes. However, complete understanding of the complex photorelaxation pathways of πσ* states in the aqueous environment was very challenging, owing to the direct participation of solvent molecules in the excited-state deactivation. Here, we present non-adiabatic molecular dynamics simulations and potential energy surface calculations of the photoexcited imidazole–(H2O)5 cluster using the algebraic diagrammatic construction method to the second-order [ADC(2)]. We show that electron driven proton transfer (EDPT) along a wire of at least two water molecules may lead to the formation of a πσ*/S0 state crossing, similarly to what we suggested for 2-aminooxazole. We expand on our previous findings by direct comparison of the imidazole–(H2O)5 cluster to non-adiabatic molecular dynamics simulations of imidazole in the gas phase, which reveal that the presence of water molecules extends the overall excited-state lifetime of the chromophore. To embed the results in a biological context, we provide calculations of potential energy surface cuts for the analogous photorelaxation mechanism present in adenine, which contains an imidazole ring in its structure.


2020 ◽  
Vol 22 (4) ◽  
pp. 2424-2428
Author(s):  
Yi-Hui Chen ◽  
Robert Sung ◽  
Kuangsen Sung

A strong π-donating group like p-NMe2 significantly lowers the S1 excited-state potential energy surface of green fluorescent protein chromophore by photoinduced intramolecular charge transfer, dramatically changing its excited-state behavior.


2021 ◽  
Vol 11 (1) ◽  
pp. 38-43
Author(s):  
Nguyen Trong Nghia ◽  
Nguyen Duc Trung ◽  
Tran Thi Thoa ◽  
Phan Thi Thuy

C2H5OH is one of important renewable fuels. The mechanism for the C2H5OH + HCO reaction has been investigated by a potential energy surface calculation at the B3LYP/aug-cc-pVTZ (optimization) and CCSD(T)/cc-pVTZ (single-point) levels. Our results show that the HCO free radical can abstract the H atoms in the OH group giving CH3CH2O + CH2O or in the CH2 group giving CH3CHOH + CH2O. The rate constant results by TST calculations considering tunneling corrections show that the second pathway is dominate in all the calculation temperature range of 300-2000K.


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