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首页> 外文期刊>International Journal of Quantum Chemistry >Charge transfer in single- and double-strand DNAs: Theoretical analysis based on molecular orbital method
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Charge transfer in single- and double-strand DNAs: Theoretical analysis based on molecular orbital method

机译:单链和双链DNA中的电荷转移:基于分子轨道方法的理论分析

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摘要

Electrochemical DNA chips determine the sequence of DNA bases by detecting the change in charge conductivity through single- or double-strand DNA. Experimentally, double-strand DNAs were found to conduct much greater electric current than single-strand DNAs. To gain insight into the underlying mechanism leading to such a disparity in charge conductivity, the hole/electron conductivities in single- and double-strand DNAs were examined theoretically by molecular dynamics and molecular orbital (MO) calculations. The hole/electron transfer integrals between the neighboring DNA bases were estimated from the frontier MO energy levels. The current-voltage characteristics of single- and double-strand DNAs, derived from the transfer integrals and the site energy of each DNA base, are qualitatively in agreement with experiment. (c) 2006 Wiley Periodicals, Inc.
机译:电化学DNA芯片通过检测单链或双链DNA的电荷电导率变化来确定DNA碱基的序列。在实验中,发现双链DNA的电流要比单链DNA大得多。为了深入了解导致电荷电导率差异的潜在机制,理论上通过分子动力学和分子轨道(MO)计算检查了单链和双链DNA中的空穴/电子电导率。从前沿MO能级估计相邻DNA碱基之间的空穴/电子转移积分。从转移积分和每个DNA碱基的位点能量得出的单链和双链DNA的电流-电压特性在质量上与实验一致。 (c)2006年Wiley Periodicals,Inc.

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