材料科学
煅烧
纳米尺度
剥脱关节
氢氧化物
催化作用
化学工程
纳米技术
氧化物
纳米复合材料
氮化硼
纳米颗粒
石墨烯
有机化学
工程类
冶金
化学
作者
Jongkyoung Kim,Myeung-jin Lee,Jihun Kim,Wonsik Jang,Jong‐Hoon Lee,Xingyu Ding,Kelvin H. L. Zhang,Kwangjin An,Hong‐Dae Kim,Seungho Cho
标识
DOI:10.1002/adfm.202400341
摘要
Abstract The preparation of two‐dimensional (2D) materials often requires complicated exfoliation procedures having low yields. The exfoliated nanosheets are prone to thermal aggregation and unsuitable for thermocatalysis. Herein, a scalable approach produces 2D catalyst precursors well‐distributed and mixed at the nanoscale. Using continuous microfluidization and single‐layer layered double hydroxide (LDH) synthesis, the prepared suspension contained exfoliated hexagonal boron nitride (h‐BN) nanosheets and single‐layer LDHs. The increased contact area between h‐BN and LDHs enables the formation of highly dispersed MnCoAl mixed metal oxide nanoparticles anchored on h‐BN nanosheets after calcination. In the selective catalytic reduction of NO x with NH 3 (NH 3 ‐SCR, a representative thermocatalytic application), this nanocomposite demonstrates a record turnover frequency of 0.772 h −1 among reported Mn‐based NH 3 ‐SCR catalysts, with high NO x conversion and high N 2 selectivity at low temperatures. By creating 2D precursors mixed at the nanoscale, this new synthetic approach can realize the scalable production of highly efficient thermocatalysts.
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