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Flavin Charge Transfer Transitions Assist DNA Photolyase Electron Transfer.黄素电荷转移跃迁辅助DNA光解酶电子转移。
AIP Conf Proc. 2007;963:674-677. doi: 10.1063/1.2836174.
2
Steady-state current transfer and scattering theory.稳态电流传输和散射理论。
J Chem Phys. 2010 Aug 7;133(5):054105. doi: 10.1063/1.3466876.
3
Fluctuations in biological and bioinspired electron-transfer reactions.生物及仿生电子转移反应中的波动现象。
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4
Modulating unimolecular charge transfer by exciting bridge vibrations.通过激发桥振动来调制单分子电荷转移。
J Am Chem Soc. 2009 Dec 23;131(50):18060-2. doi: 10.1021/ja907041t.
5
Distance dependence of the charge transfer rate for peptide nucleic acid monolayers.多肽核酸单层的电荷转移速率的距离依赖性。
J Phys Chem B. 2010 Nov 18;114(45):14140-8. doi: 10.1021/jp906910h. Epub 2009 Aug 19.
6
Steering electrons on moving pathways.引导沿移动轨迹运动的电子。
Acc Chem Res. 2009 Oct 20;42(10):1669-78. doi: 10.1021/ar900123t.
7
Turning charge transfer on and off in a molecular interferometer with vibronic pathways.通过振动电子路径在分子干涉仪中开启和关闭电荷转移
Nano Lett. 2009 May;9(5):1818-23. doi: 10.1021/nl8037695.
8
Chiral control of electron transmission through molecules.通过分子的电子传输的手性控制。
Phys Rev Lett. 2008 Dec 5;101(23):238103. doi: 10.1103/PhysRevLett.101.238103.
9
Persistence of structure over fluctuations in biological electron-transfer reactions.生物电子转移反应中结构在波动中的持久性。
Phys Rev Lett. 2008 Oct 10;101(15):158102. doi: 10.1103/PhysRevLett.101.158102. Epub 2008 Oct 8.
10
PNA versus DNA: effects of structural fluctuations on electronic structure and hole-transport mechanisms.肽核酸与脱氧核糖核酸:结构波动对电子结构和空穴传输机制的影响。
J Am Chem Soc. 2008 Sep 3;130(35):11752-61. doi: 10.1021/ja802541e. Epub 2008 Aug 12.

电子转移途径中的相干性。

Coherence in electron transfer pathways.

作者信息

Skourtis Spiros S, Beratan David N, Waldeck David H

机构信息

Department of Physics, University of Cyprus, Nicosia, Cyprus.

出版信息

Procedia Chem. 2011 Jan 1;3(1):99-104. doi: 10.1016/j.proche.2011.08.016.

DOI:10.1016/j.proche.2011.08.016
PMID:23833692
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3699886/
Abstract

Central to the view of electron-transfer reactions is the idea that nuclear motion generates a transition state geometry at which the electron/hole amplitude propagates coherently from the electron donor to the electron acceptor. In the weakly coupled or nonadiabatic regime, the electron amplitude tunnels through an electronic barrier between the donor and acceptor. The structure of the barrier is determined by the covalent and noncovalent interactions of the bridge. Because the tunneling barrier depends on the nuclear coordinates of the reactants (and on the surrounding medium), the tunneling barrier is highly anisotropic, and it is useful to identify particular routes, or pathways, along which the transmission amplitude propagates. Moreover, when more than one such pathway exists, and the paths give rise to comparable transmission amplitude magnitudes, one may expect to observe quantum interferences among pathways if the propagation remains coherent. Given that the effective tunneling barrier height and width are affected by the nuclear positions, the modulation of the nuclear coordinates will lead to a modulation of the tunneling barrier and hence of the electron flow. For long distance electron transfer in biological and biomimetic systems, nuclear fluctuations, arising from flexible protein moieties and mobile water bridges, can become quite significant. We discuss experimental and theoretical results that explore the quantum interferences among coupling pathways in electron-transfer kinetics; we emphasize recent data and theories associated with the signatures of chirality and inelastic processes, which are manifested in the tunneling pathway coherence (or absence of coherence).

摘要

电子转移反应观点的核心是,核运动产生一种过渡态几何结构,在这种结构下电子/空穴振幅从电子供体到电子受体进行相干传播。在弱耦合或非绝热体系中,电子振幅隧穿供体与受体之间的电子势垒。势垒的结构由桥的共价和非共价相互作用决定。由于隧穿势垒取决于反应物的核坐标(以及周围介质),隧穿势垒具有高度各向异性,识别传输振幅传播的特定路径或通道很有用。此外,当存在不止一条这样的通道,且这些通道产生相当的传输振幅大小时,如果传播保持相干,人们可能会观察到通道间的量子干涉。鉴于有效隧穿势垒高度和宽度受核位置影响,核坐标的调制将导致隧穿势垒进而电子流的调制。对于生物和仿生体系中的长距离电子转移,由柔性蛋白质部分和流动水桥产生的核涨落可能变得相当显著。我们讨论探索电子转移动力学中耦合通道间量子干涉的实验和理论结果;我们强调与手性和非弹性过程特征相关的最新数据和理论,这些特征体现在隧穿通道的相干性(或缺乏相干性)中。