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Electrochemically Modulated Diffraction A Novel Strategy for the Determination of Conduction-Band-Edge Energies for Nanocrystalline Thin-Film Semiconductor Electrodes

机译:电化学调制衍射测定纳米晶薄膜半导体电极导带能的新策略

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摘要

Micropatterned titanium dioxide thin-film electrodes exhibit efficient diffraction in the presence of aqueous or nonaqueous electrolyte solutions. The diffraction efficiency can be modulated electrochemically. At the wavelengths examined, the modulation is caused by changes in both real and imaginary components of the refractive index. The index changes, in turn, are caused by the addition of electrons to near-band-edge trap sites and by optical absorption by the trapped electrons. The onset potential for diffraction modulation provides a good measure of the potential of the electrode's conduction bandedge. Variable excitation wavelength measurements show that, after correction for absorption losses, the electrochemically induced changes in the proportion of light diffracted can be either positive or negative. The signs and the relative magnitudes of the wavelength-dependent changes are well described by a Kramers-Kronig analysis that assumes that changes in the real component of the refractive index dominate the response.
机译:微图案化的二氧化钛薄膜电极在水性或非水性电解质溶液的存在下表现出有效的衍射。衍射效率可以电化学方式调节。在检查的波长下,调制是由折射率的实部和虚部变化引起的。折射率变化又是由于将电子添加到近带边陷阱位置以及被捕获的电子进行光吸收而引起的。衍射调制的起始电位提供了电极导带边缘电位的良好度量。可变的激发波长测量结果表明,在对吸收损耗进行校正之后,电化学诱导的衍射光比例变化可以是正的或负的。依赖于波长的变化的符号和相对大小可以通过Kramers-Kronig分析很好地描述,该分析假定折射率的实数部分的变化主导了响应。

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