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PNAS Plus: Electron transfer between anatase TiO2 and an O2 molecule directly observed by atomic force microscopy

机译:PNAS Plus:通过原子力显微镜直接观察到锐钛矿型TiO2与O2分子之间的电子转移

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摘要

Activation of molecular oxygen is a key step in converting fuels into energy, but there is precious little experimental insight into how the process proceeds at the atomic scale. Here, we show that a combined atomic force microscopy/scanning tunneling microscopy (AFM/STM) experiment can both distinguish neutral O2 molecules in the triplet state from negatively charged (O2) radicals and charge and discharge the molecules at will. By measuring the chemical forces above the different species adsorbed on an anatase TiO2 surface, we show that the tip-generated (O2) radicals are identical to those created when (i) an O2 molecule accepts an electron from a near-surface dopant or (ii) when a photo-generated electron is transferred following irradiation of the anatase sample with UV light. Kelvin probe spectroscopy measurements indicate that electron transfer between the TiO2 and the adsorbed molecules is governed by competition between electron affinity of the physisorbed (triplet) O2 and band bending induced by the (O2) radicals. Temperature–programmed desorption and X-ray photoelectron spectroscopy data provide information about thermal stability of the species, and confirm the chemical identification inferred from AFM/STM.
机译:分子氧的活化是将燃料转化为能量的关键步骤,但是对于这一过程如何在原子尺度上进行的实验,我们几乎没有宝贵的见识。在这里,我们表明,结合的原子力显微镜/扫描隧道显微镜(AFM / STM)实验既可以将三重态的中性O2分子与带负电的(O2)-自由基区分开,又可以对中性O2分子进行充电和放电分子随意。通过测量锐钛矿型TiO2表面吸附的不同物种之上的化学力,我们表明,尖端产生的(O2)-自由基与(i)O2分子接受电子时产生的自由基相同(ii)在锐钛矿样品用紫外光照射后,当光生电子转移时,产生了来自近表面掺杂剂的光。开尔文探针光谱测量表明,TiO2与吸附分子之间的电子转移受物理吸附(三重态)O2的电子亲和力与(O2)-自由基引起的能带弯曲之间的竞争支配。程序升温解吸和X射线光电子能谱数据提供了有关物种热稳定性的信息,并证实了从AFM / STM推断出的化学鉴定。

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