Lukens Wayne W, Minasian Stefan G, Booth Corwin H
Chemical Sciences Division, Lawrence Berkeley National Laboratory Berkeley CA 94720 USA
Chem Sci. 2023 Nov 3;14(44):12784-12795. doi: 10.1039/d3sc03304j. eCollection 2023 Nov 15.
In LnO (Ln = Ce, Pr, and Tb), the amount of Ln 4f mixing with O 2p orbitals was determined by O K-edge X-ray absorption near edge (XANES) spectroscopy and was similar to the amount of mixing between the Ln 5d and O 2p orbitals. This similarity was unexpected since the 4f orbitals are generally perceived to be "core-like" and can only weakly stabilize ligand orbitals through covalent interactions. While the degree of orbital mixing seems incompatible with this view, orbital mixing alone does not determine the degree of stabilization provided by a covalent interaction. We used a Hubbard model to determine this stabilization from the energies of the O 2p to 4f, 5d(e), and 5d(t) excited charge-transfer states and the amount of excited state character mixed into the ground state, which was determined using Ln L-edge and O K-edge XANES spectroscopy. The largest amount of stabilization due to mixing between the Ln 4f and O 2p orbitals was 1.6(1) eV in CeO. While this energy is substantial, the stabilization provided by mixing between the Ln 5d and O 2p orbitals was an order of magnitude greater consistent with the perception that covalent bonding in the lanthanides is largely driven by the 5d orbitals rather than the 4f orbitals.
在LnO(Ln = Ce、Pr和Tb)中,通过O K边X射线吸收近边(XANES)光谱确定了Ln 4f与O 2p轨道的混合量,其与Ln 5d和O 2p轨道之间的混合量相似。这种相似性出乎意料,因为4f轨道通常被认为是“类芯”的,只能通过共价相互作用微弱地稳定配体轨道。虽然轨道混合程度似乎与这种观点不相符,但仅轨道混合并不能决定共价相互作用提供的稳定程度。我们使用哈伯德模型,根据O 2p到4f、5d(e)和5d(t)激发电荷转移态的能量以及混入基态的激发态特征量来确定这种稳定性,激发态特征量是使用Ln L边和O K边XANES光谱确定的。CeO中Ln 4f和O 2p轨道混合产生的最大稳定量为1.6(1)eV。虽然这个能量相当可观,但Ln 5d和O 2p轨道混合提供的稳定性要大一个数量级,这与镧系元素中共价键主要由5d轨道而非4f轨道驱动的观点一致。