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Control of H-Related Defects in γ-MnO 2 in a Hydrothermal Synthesis

化学 热液循环 电化学 热重分析 纳米颗粒 空位缺陷 水热合成 离子 氧化锰 结晶学 电极 化学工程 纳米技术 物理化学 材料科学 有机化学 工程类
作者
Nicolas P. L. Magnard,Andrea Kirsch,Mads R. V. Jørgensen,I. Kantor,Daniel Risskov Sørensen,Simo Huotari,Svemir Rudić,Heloisa N. Bordallo,Kirsten M. Ø. Jensen
出处
期刊:Inorganic Chemistry [American Chemical Society]
卷期号:62 (32): 13021-13029 被引量:5
标识
DOI:10.1021/acs.inorgchem.3c01815
摘要

Manganese dioxide is a good candidate for effective energy storage and conversion as it possesses rich electrochemistry. The compound also shows a wide polymorphism. The γ-variety, an intergrowth of β- and R-MnO2, has been extensively studied in several types of batteries (e.g., Zn/MnO2, Li-ion) and is a common electrode material for commercial batteries. It is well known that the insertion of protons thermodynamically stabilizes γ-MnO2 with respect to β-MnO2. Protons can enter the structure either by forming groups of 4 hydroxyls around a Mn4+ vacancy, called a Ruetschi defect, or by forming a hydroxyl group near a Mn3+ ion, called a Coleman defect. These defects differently affect the electrochemistry of manganese oxide, and tailoring their amount in the structure can be used to tune the material properties. Previous studies have addressed the proton insertion process, but the role of the synthesis pathway on the amount of defects created is not well understood. We here investigate how the parameters in a hydrothermal synthesis of γ-MnO2 nanoparticles influence the amount and type of H-related defects. Structural investigations are carried out using Pair Distribution Function analysis, X-ray absorption spectroscopy, thermogravimetric analysis, and inelastic neutron scattering. We demonstrate the possibility to control the amount and type of defects introduced during the synthesis. While the amount of Ruetschi defects increases with synthesis temperature, it decreases with extended synthesis time, along with the amount of Coleman defects. Moreover, we discuss the arrangement of the defects in the γ-MnO2 nanoparticles.
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