Selective Synthesis of Defect-Rich LaMnO3 by Low-Temperature Anion Cometathesis

化学 卤化物 复分解 盐变质反应 化学计量学 无机化学 碱金属 氧化态 催化作用 物理化学 有机化学 聚合物 聚合
作者
Gia Thinh Tran,Allison Wustrow,Daniel O’Nolan,Shuxia Tao,Christopher J. Bartel,Tanjin He,Matthew J. McDermott,Brennan C. McBride,Karena W. Chapman,Simon J. L. Billinge,Kristin A. Persson,Gerbrand Ceder,James R. Neilson
出处
期刊:Inorganic Chemistry [American Chemical Society]
标识
DOI:10.1021/acs.inorgchem.3c03305
摘要

The synthesis of complex oxides at low temperatures brings forward aspects of chemistry not typically considered. This study focuses on perovskite LaMnO3, which is of interest for its correlated electronic behavior tied to the oxidation state and thus the spin configuration of manganese. Traditional equilibrium synthesis of these materials typically requires synthesis reaction temperatures in excess of 1000 °C, followed by subsequent annealing steps at lower temperatures and different p(O2) conditions to manipulate the oxygen content postsynthesis (e.g., LaMnO3+x). Double-ion exchange (metathesis) reactions have recently been shown to react at much lower temperatures (500–800 °C), highlighting a fundamental knowledge gap for how solids react at lower temperatures. Here, we revisit the metathesis reaction, LiMnO2 + LaOX, where X is a halide or mixture of halides, using in situ synchrotron X-ray diffraction. These experiments reveal low reaction onset temperatures (ca. 450–480 °C). The lowest reaction temperatures are achieved by a mixture of lanthanum oxyhalide precursors: 2 LiMnO2 + LaOCl + LaOBr. In all cases, the resulting products are the expected alkali halide salt and defective La1–ϵMn1–ϵO3, where ϵ = x/(3 + x). We observe a systematic variation in defect concentration, consistent with a rapid stoichiometric local equilibration of the precursors and the subsequent global thermodynamic equilibration with O2 (g), as revealed by computational thermodynamics. Together, these results reveal how the inclusion of additional elements (e.g., Li and a halide) leads to the local equilibrium, particularly at low reaction temperatures for solid-state chemistry.
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