Результаты поиска по 'electron transport':
Найдено статей: 4
  1. Krasilnikov P.M.
    Role of hydrogen bonds in molecular relaxation during electron transport processes in biological systems
    Computer Research and Modeling, 2009, v. 1, no. 3, pp. 297-320

    In molecular systems with hydrogen bonds the mechanism of proton relaxation can take place. It is caused by redistribution of protons between two steady positions in double walls potential along the line of the hydrogen bond. This redistribution occurs at change of parameters of the double walls potential of the hydrogen bond which is caused by change of an electronic state of molecular system. The relaxation process is carried out due to a tunnel transfer of protons along the line of bonds. It is shown, that relaxation process can define temperature dependence of power parameters (either of the free energy differences ΔG or of the reorganization energy λ) of charge recombination P+Q-A from RC of Rhodobacter sphaeroides.

    Views (last year): 6. Citations: 3 (RSCI).
  2. Sivunov A.V., Maslovskaya A.G.
    Numerical simulation of charging processes at ferroelectric diagnostics with scanning electron microscopy techniques
    Computer Research and Modeling, 2014, v. 6, no. 1, pp. 107-118

    An algorithm of applied problem solving was described to calculate electrical characteristics of electrical field effects in ferroelectrics electron-beam charged. The algorithm was based on implementation of the deterministic model using finite element method as well as taking into account Monte-Carlo simulation results of electron transport. The program application was developed to perform computing experiments.

    Citations: 2 (RSCI).
  3. Abaturova A.M., Kovalenko I.B., Riznichenko G.Yu., Rubin A.B.
    Investigation of complex formation of flavodoxin and photosystem 1 by means of direct multiparticle computer simulation
    Computer Research and Modeling, 2009, v. 1, no. 1, pp. 85-91

    Kinetics of complex formation between components of the photosynthetic electron transport chain — flavodoxin and membrane complex photosystem I has been studied using computer model based on methods of multiparticle simulation and Brownian dynamics. We simulated Brownian motion of several hundreds of flavodoxin molecules, taking into account electrostatic interactions and complex shape of the molecules. Our model could describe experimental nonmonotonic dependence of the association rate constant for flavodoxin and photosystem I. This lets us conclude that electrostatic interactions are sufficient to form such kind of nonmonotonic dependence.

    Views (last year): 4. Citations: 2 (RSCI).
  4. Maslakov A.S.
    Describing processes in photosynthetic reaction center ensembles using a Monte Carlo kinetic model
    Computer Research and Modeling, 2020, v. 12, no. 5, pp. 1207-1221

    Photosynthetic apparatus of a plant cell consists of multiple photosynthetic electron transport chains (ETC). Each ETC is capable of capturing and utilizing light quanta, that drive electron transport along the chain. Light assimilation efficiency depends on the plant’s current physiological state. The energy of the part of quanta that cannot be utilized, dissipates into heat, or is emitted as fluorescence. Under high light conditions fluorescence levels gradually rise to the maximum level. The curve describing that rise is called fluorescence rise (FR). It has a complex shape and that shape changes depending on the photosynthetic apparatus state. This gives one the opportunity to investigate that state only using the non invasive measuring of the FR.

    When measuring fluorescence in experimental conditions, we get a response from millions of photosynthetic units at a time. In order to reproduce the probabilistic nature of the processes in a photosynthetic ETC, we created a Monte Carlo model of this chain. This model describes an ETC as a sequence of electron carriers in a thylakoid membrane, connected with each other. Those carriers have certain probabilities of capturing light photons, transferring excited states, or reducing each other, depending on the current ETC state. The events that take place in each of the model photosynthetic ETCs are registered, accumulated and used to create fluorescence rise and electron carrier redox states accumulation kinetics. This paper describes the model structure, the principles of its operation and the relations between certain model parameters and the resulting kinetic curves shape. Model curves include photosystem II reaction center fluorescence rise and photosystem I reaction center redox state change kinetics under different conditions.

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