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Temporal evolution of the electron diffusion coefficient in electrolyte-filled mesoporous nanocrystalline TiO2 films

机译:电解质填充介孔纳米晶TiO2薄膜中电子扩散系数的时间演化

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Electron transport in electrolyte-filled mesoporous TiO2-based solar cells is described quantitatively from the perspective of the continuous-time random walk model. An analytical expression is derived for the time-dependent diffusion coefficient of electrons, which transforms at a characteristic ( Fermi) time from strongly time-dependent values (dispersive transport) at short times to relatively time-independent values (nondispersive transport) at long times. At short times, the diffusion coefficient displays a power-law behavior with time. The timescale for the diffusion coefficient to reach its steady-state value is substantially longer than the Fermi time. The Fermi time and the steepness of the distribution of waiting times associated with trap sites have a strong influence on both the steady-state diffusion coefficient of electrons and on the dispersiveness of electron transport. At short timescales, ionic drag, associated with the ambipolar effect, slows electron transport through the TiO2 matrix, whereas at steady state, transport is trap limited. Decreasing the electron density lowers the steady-state limit of the diffusion coefficient and increases the timescale over which transport is dispersive. (c) 2007 Published by Elsevier B.V.
机译:从连续时间随机游走模型的角度定量描述了电解质填充的介孔TiO2基太阳能电池中的电子传输。推导了电子随时间变化的扩散系数的解析表达式,它在特征时间(费米)从短时间的强烈时间相关值(分散传输)转变为长时间的相对时间无关值(非分散传输) 。在短时间内,扩散系数随时间显示幂律行为。扩散系数达到其稳态值的时间尺度明显长于费米时间。费米时间和与陷阱位置相关的等待时间分布的陡度对电子的稳态扩散系数和电子传输的色散性都有很大的影响。在短时间尺度上,与双极性效应相关的离子拖曳会减慢电子通过TiO2基质的传输,而在稳态时,传输受陷阱限制。电子密度的降低降低了扩散系数的稳态极限,并增加了传输被分散的时间尺度。 (c)2007年由Elsevier B.V.

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