Dang Uyen, O'Hara Jake, Evans Hayden A, Olds Daniel, Chamorro Juan, Hickox-Young Daniel, Laurita Geneva, Macaluso Robin T
Department of Chemistry and Biochemistry, University of Texas at Arlington, Arlington, Texas 76019, United States.
Department of Chemistry and Biochemistry, Bates College, Lewiston, Maine 04240, United States.
Inorg Chem. 2022 Nov 21;61(46):18601-18610. doi: 10.1021/acs.inorgchem.2c03031. Epub 2022 Nov 8.
Lone pair-driven distortions are a hallmark of many technologically important lead (Pb)-based materials. The role of Pb in polar perovskites is well understood and easily manipulated for applications in piezo- and ferroelectricity, but the control of ordered lone pair behavior in Pb-based pyrochlores is less clear. Crystallographically and geometrically more complex than the perovskite structure, the pyrochlore structure is prone to geometric frustration of local dipoles due to a triangular arrangement of cations on a diamond lattice. The role of vacancies on the O' site of the pyrochlore network has been implicated as an important driver for the expression and correlation of stereochemically active lone pairs in pyrochlores such as PbRuO and PbSnO. In this work we report on the structural, dielectric, and heat capacity behavior of the cation- and anion-deficient pyrochlore PbNbO upon cooling. We find that local distortions are present at all temperatures that can be described by cristobalite-type cation ordering, and this ordering persists to longer length scales upon cooling. From a crystallographic perspective, the material remains disordered and does not undergo an observable phase transition. In combination with density function calculations, we propose that the stereochemical activity of the Pb lone pairs is driven by proximity to O' vacancies, and the crystallographic site disorder of the O' vacancies prohibits long range correlation of lone pair-driven distortions. This in turn prevents a low-temperature phase transition and results in an elevated dielectric permittivity across a broad temperature range.
孤对电子驱动的畸变是许多具有重要技术意义的铅(Pb)基材料的一个特征。Pb在极性钙钛矿中的作用已得到充分理解,并且在压电和铁电应用中易于操控,但对Pb基烧绿石中有序孤对电子行为的控制尚不清楚。烧绿石结构在晶体学和几何结构上比钙钛矿结构更复杂,由于金刚石晶格上阳离子的三角形排列,其局部偶极子容易出现几何失配。烧绿石网络中O'位空位的作用被认为是烧绿石(如PbRuO和PbSnO)中立体化学活性孤对电子表达和关联的重要驱动因素。在这项工作中,我们报告了缺阳离子和缺阴离子的烧绿石PbNbO在冷却时的结构、介电和热容行为。我们发现,在所有温度下都存在可由方石英型阳离子有序化描述的局部畸变,并且这种有序化在冷却时会持续到更长的长度尺度。从晶体学角度来看,该材料保持无序状态,并且没有发生可观察到的相变。结合密度泛函计算,我们提出Pb孤对电子的立体化学活性是由与O'空位的接近程度驱动的,并且O'空位的晶体学位置无序阻止了孤对电子驱动畸变的长程关联。这反过来又阻止了低温相变,并导致在很宽的温度范围内介电常数升高。