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使用镀镍碳复合材料提高FeF的热稳定性和导电性:在热电池中用作高温阴极的应用。

Enhanced Thermal Stability and Conductivity of FeF Using Ni-Coated Carbon Composites: Application as High-Temperature Cathodes in Thermal Batteries.

作者信息

Choi Ji-Hyeok, Kim Su Hyeong, Kang Ha Eun, Kim Minu, Choi Yusong, Yoon Young Soo

机构信息

Department of Materials Science & Engineering, Gachon University, Seongnam 13120, Republic of Korea.

Defense Materials and Energy Development Center, Agency for Defense Development, Daejeon 34060, Republic of Korea.

出版信息

Nanomaterials (Basel). 2023 Dec 6;13(24):3089. doi: 10.3390/nano13243089.

Abstract

Cathode active materials and conductive additives for thermal batteries operating at high temperatures have attracted research interest, with a particular focus on compounds offering high thermal stability. Recently, FeF has been proposed as a candidate for high-voltage cathode materials; however, its commercialization is hindered by its low conductivity. In this study, conductive additives, such as Ni-coated carbon composites (multi-walled carbon nanotubes (MWCNTs) and carbon black (CB)), were utilized to enhance the thermal stability and conductivity of FeF. The incorporation of metal-carbon conductive additives in the FeF composite increased the thermal stability by more than 10 wt.% and ensured high capacity upon conductivity enhancement. The FeF@Ni/MWCB 15 wt.% composite containing 30 wt.% Ni exhibited a discharge capacity of ∼86% of the theoretical capacity of 712 mAh/g. The use of Ni-coated carbon-based conductive additives will allow the application of FeF as an effective high-temperature cathode material for thermal batteries.

摘要

用于高温热电池的阴极活性材料和导电添加剂已引起研究兴趣,尤其关注具有高热稳定性的化合物。最近,氟化铁已被提议作为高压阴极材料的候选物;然而,其商业化受到低电导率的阻碍。在本研究中,使用了诸如镍包覆碳复合材料(多壁碳纳米管(MWCNTs)和炭黑(CB))等导电添加剂来提高氟化铁的热稳定性和电导率。在氟化铁复合材料中加入金属 - 碳导电添加剂使热稳定性提高了超过10 wt.%,并在提高电导率的同时确保了高容量。含有30 wt.%镍的15 wt.% FeF@Ni/MWCB复合材料表现出的放电容量约为理论容量712 mAh/g的86%。使用镍包覆的碳基导电添加剂将使氟化铁能够作为热电池的有效高温阴极材料得到应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ee5/10745831/88cb224e97f7/nanomaterials-13-03089-g001.jpg

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