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直接评估单个表面羟基的酸度。

Direct assessment of the acidity of individual surface hydroxyls.

机构信息

Institute of Applied Physics, TU Wien, Vienna, Austria.

Central European Institute of Technology (CEITEC), Brno University of Technology, Brno, Czech Republic.

出版信息

Nature. 2021 Apr;592(7856):722-725. doi: 10.1038/s41586-021-03432-3. Epub 2021 Apr 28.

DOI:10.1038/s41586-021-03432-3
PMID:33911267
Abstract

The state of deprotonation/protonation of surfaces has far-ranging implications in chemistry, from acid-base catalysis and the electrocatalytic and photocatalytic splitting of water, to the behaviour of minerals and biochemistry. An entity's acidity is described by its proton affinity and its acid dissociation constant pK (the negative logarithm of the equilibrium constant of the proton transfer reaction in solution). The acidity of individual sites is difficult to assess for solids, compared with molecules. For mineral surfaces, the acidity is estimated by semi-empirical concepts, such as bond-order valence sums, and increasingly modelled with first-principles molecular dynamics simulations. At present, such predictions cannot be tested-experimental measures, such as the point of zero charge, integrate over the whole surface or, in some cases, individual crystal facets. Here we assess the acidity of individual hydroxyl groups on InO(111)-a model oxide with four different types of surface oxygen atom. We probe the strength of their hydrogen bonds with the tip of a non-contact atomic force microscope and find quantitative agreement with density functional theory calculations. By relating the results to known proton affinities of gas-phase molecules, we determine the proton affinity of the different surface sites of InO with atomic precision. Measurements on hydroxylated titanium dioxide and zirconium oxide extend our method to other oxides.

摘要

表面的质子化/去质子化状态在化学中具有广泛的影响,从酸碱催化、水的电催化和光催化分解,到矿物和生物化学的行为。一个实体的酸度可以用其质子亲和能和酸离解常数 pK(质子转移反应在溶液中的平衡常数的负对数)来描述。与分子相比,固体中单个位点的酸度较难评估。对于矿物表面,酸度是通过半经验概念来估计的,如键序价和,并且越来越多地通过第一性原理分子动力学模拟来建模。目前,这些预测无法进行测试——实验测量,如零电荷点,在整个表面或在某些情况下在单个晶面进行积分。在这里,我们评估了 InO(111)——一种具有四种不同类型表面氧原子的模型氧化物——上单个羟基的酸度。我们用非接触原子力显微镜的尖端探测它们氢键的强度,并与密度泛函理论计算得出定量一致的结果。通过将结果与气相分子的已知质子亲和能相关联,我们以原子精度确定了 InO 不同表面位点的质子亲和能。对羟基化的二氧化钛和氧化锆的测量将我们的方法扩展到其他氧化物。

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