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直流电弧等离子体法原位制备用于多层陶瓷电容器(MLCC)电极的Ni@CaO纳米胶囊的合成与表征

Synthesis and Characterization of Ni@CaO Nanocapsules for Multilayer Ceramic Capacitors (MLCCs) Electrodes Prepared In Situ by DC Arc Plasma Method.

作者信息

Shen Nairui, Li Xiyang, Qu Xinghao, Gao Jun, Liu Chunjing, Wei Guanglong, Wang Yilong, Dong Xinglong, Jung Youngguan

机构信息

School of Materials Science and Engineering, Dalian University of Technology, Dalian, Liaoning 116024, P. R. China.

School of Science, Shenyang University of Technology, Shenyang, Liaoning 110870, P. R. China.

出版信息

Langmuir. 2025 Aug 5;41(30):20343-20360. doi: 10.1021/acs.langmuir.5c02710. Epub 2025 Jul 21.

Abstract

Ni@CaO nanocapsules for multilayer ceramic capacitors (MLCCs) inner electrodes are synthesized in situ by the DC arc plasma method under nitrogen-rich atmosphere, and their structures, ionic valence states (Ca, O, Ni), compositions, and other properties are characterized and tested. Based on the principle of oxygen potential, the aerosol growth model is introduced to explain the mechanism of synthesizing Ni@CaO nanoparticles, and it is confirmed that the composition ratio of CaO and Ni can be controlled during co-evaporation. The results show that the prepared pure nickel and all Ni@CaO nanoparticles are pure in physical phase, and the average grain sizes reach the nanometer scale with the smooth "core-shell" spherical structure, and the thickness of CaO shell is approximately 1.5 nm. According to the performance test results, the optimal doping ratio of Ni@CaO is determined to be 2:8 (CaO:Ni); its average grain size reaches 25 nm, and the oxidation temperature is 454.5 °C, which is 54.7 °C higher than that of the pure nickel samples. Meanwhile, the shrinkage rate of the scale sample decreased from 12.77% of the pure nickel powder for production and 15.31% of the pure nickel sample for S1 to 9.75% at a BaTiO matching temperature of 1200 °C. The variation law of the relationship between nanoparticle size unity and performance is verified. Moreover, its dielectric loss (tan δ) in high-frequency environments is only 0.03, which is greatly reduced, compared to the 0.05 of pure nickel, and can provide larger values. Based on this, the characteristics of DC arc plasma method are highlighted, such as simple material and simple process; due to the advantages of high stability and high melting point of CaO, the prepared Ni@CaO powder can be used as the potential substrate for the industrial production of the new generation of MLCCs devices.

摘要

用于多层陶瓷电容器(MLCC)内电极的Ni@CaO纳米胶囊在富氮气氛下通过直流电弧等离子体法原位合成,并对其结构、离子价态(Ca、O、Ni)、组成和其他性能进行了表征和测试。基于氧势原理,引入气溶胶生长模型来解释Ni@CaO纳米颗粒的合成机理,并证实了在共蒸发过程中CaO和Ni的组成比可以控制。结果表明,制备的纯镍和所有Ni@CaO纳米颗粒物相纯净,平均晶粒尺寸达到纳米级,具有光滑的“核壳”球形结构,CaO壳层厚度约为1.5nm。根据性能测试结果,确定Ni@CaO的最佳掺杂比为2:8(CaO:Ni);其平均晶粒尺寸达到25nm,氧化温度为454.5℃,比纯镍样品高54.7℃。同时,在1200℃的BaTiO匹配温度下,鳞片样品的收缩率从生产用纯镍粉的12.77%和S1用纯镍样品的15.31%降至9.75%。验证了纳米颗粒尺寸统一性与性能之间关系的变化规律。此外,其在高频环境下的介电损耗(tanδ)仅为0.03,与纯镍的0.05相比大幅降低,并且可以提供更大的值。基于此,突出了直流电弧等离子体法的特点,如材料简单、工艺简单;由于CaO具有高稳定性和高熔点的优点,制备的Ni@CaO粉末可作为新一代MLCC器件工业生产的潜在基材。

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