材料科学
氧化物
多孔性
介孔材料
剥脱关节
异质结
纳米技术
原电池
制作
化学工程
石墨烯
冶金
光电子学
催化作用
复合材料
化学
生物化学
医学
工程类
病理
替代医学
作者
Ji‐Soo Jang,Sang‐Eun Lee,Seon‐Jin Choi,Won‐Tae Koo,Dong‐Ha Kim,Hamin Shin,Hee Jung Park,Il‐Doo Kim
标识
DOI:10.1002/adfm.201903012
摘要
Abstract 2D heterogeneous oxide nanosheets (NSs) have attracted much attention in various scientific fields owing to their exceptional physicochemical properties. However, the fabrication of 2D oxide NSs with abundant p–n interfaces and large amounts of mesopores is extremely challenging. Here, a facile synthesis of highly porous 2D heterogeneous oxide NSs (e.g., SnO 2 /CoO x ) is suggested through a 2D oxide exfoliation approach combined with a fast galvanic replacement reaction (GRR). The ultrathin (<5 nm) layered CoO x NSs are simply prepared by ion‐exchange exfoliation and a subsequent GRR process that induces a rapid phase transition from p‐type CoO x to n‐type SnO 2 metal oxides (<10 min). The controlled GRR process enables the creation of heterogeneous SnO 2 /CoO x NSs consisting of small SnO 2 grain sizes (<10 nm), high porosity, numerous heterojunctions, and sub‐10 nm thickness, which are highly advantageous characteristics for chemiresistive sensors. Due to the advantage of these features, the porous SnO 2 /CoO x NSs exhibit an unparalleled HCHO‐sensing performance ( R air / R gas > 35 @ 5 ppm with a response speed of 9.34 s) with exceptional selectivity compared to that of the state‐of‐the‐art metal oxide‐based HCHO gas sensors.
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