Department of Inorganic Chemistry, Fritz Haber Institute of the Max Planck Society, Faradayweg 4-6, 14195 Berlin, Germany.
J Phys Chem A. 2011 Sep 8;115(35):9954-68. doi: 10.1021/jp205848s. Epub 2011 Aug 8.
In the present paper we report combined experimental and theoretical studies of the UV-vis-NIR spectra of the mineral compounds malachite, rosasite, and aurichalcite and of the precursor compounds for Cu/ZnO catalysts. For the copper species in the minerals the crystal field splitting and the vibronic coupling constants are estimated using the exchange charge model of the crystal field accounting for the exchange and covalence effects. On this basis the transitions responsible for the formation of the optical bands arising from the copper centers in minerals are determined and the profiles of the absorption bands corresponding to these centers are calculated. The profiles of the absorption bands calculated as a sum of bands of their respective Cu species are in quite good agreement with the experimental data. In agreement with crystal chemical considerations, the Zn ions were found to be preferentially located on the more regular, i.e., less distorted, octahedral sites in zincian malachite and rosasite, suggesting a high degree of metal ordering in these phases. This concept also applies for the mineral aurichalcite, but not for synthetic aurichalcite, which seems to exhibit a lower degree of metal ordering. The catalyst precursor was found to be a mixture of zincian malachite and a minor amount of aurichalcite. The best fit of the optical spectrum is obtained assuming a mixture of contributions from malachite (0% Zn) and rosasite (38% Zn of [Zn + Cu]), which is probably due to the intermediate Zn content of the precursor (30%).
在本文中,我们报告了矿物化合物孔雀石、硅孔雀石和蓝铜矿以及 Cu/ZnO 催化剂前体化合物的紫外-可见-近红外光谱的实验和理论研究。对于矿物中的铜物种,使用考虑了交换和共价效应的晶体场交换电荷模型来估计晶体场的分裂和振子耦合常数。在此基础上,确定了导致矿物中铜中心形成光学带的跃迁,并计算了对应于这些中心的吸收带的轮廓。将吸收带的轮廓作为其各自 Cu 物种的带的总和进行计算,与实验数据非常吻合。根据晶体化学的考虑,发现 Zn 离子优先占据更规则的、即扭曲较小的八面体位置,这表明这些相中存在高度的金属有序性。这一概念也适用于矿物蓝铜矿,但不适用于合成蓝铜矿,后者似乎表现出较低的金属有序性。催化剂前体被发现是锌孔雀石和少量蓝铜矿的混合物。假设混合物中存在来自孔雀石(0% Zn)和硅孔雀石([Zn + Cu] 的 38% Zn)的贡献,可以很好地拟合光学光谱,这可能是由于前体的中间 Zn 含量(30%)所致。