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Fabrication and good ethanol sensing of biomorphic SnO2 with architecture hierarchy of butterfly wings

机译:蝶形翼的结构层次对生物形态SnO2的制备和乙醇感测

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Using super-hydrophobic butterfly wings as templates, we developed an aqueous sol-gel soakage process assisted by ethanol-wetting and followed by calcination to fabricate well-organized porous hierarchical SnO2 with connective hollow interiors and thin mesoporous walls. The exquisite hierarchical architecture of SnO2 is faithfully replicated from the lightweight skeleton of butterfly wings at the level from nano- to macro-scales. On the basis of the self-assembly of SnO2 nanocrystallites with diameter around 7.0 nm, the interconnected tubes (lamellas), the fastigiated hollow tubers (pillars) and the double-layered substrates further construct the biomorphic hierarchical architecture. Benefiting from the small grain size and the unique hierarchical architecture, the biomorphic SnO2 as an ethanol sensor exhibits high sensitivity (49.8 to 50 ppm ethanol), and fast response/recovery time (11/31 s to 50 ppm ethanol) even at relatively low working temperature (170 degrees C).
机译:以超疏水蝴蝶翅膀为模板,我们开发了一种水溶胶-凝胶浸泡方法,辅以乙醇润湿,然后煅烧以制造组织良好的多孔分层SnO2,其内部具有连通的中空内部和薄的中孔壁。精巧的SnO2分层体系结构从蝴蝶翅膀的轻质骨架忠实地复制了,从纳米级到宏观级。基于直径约7.0 nm的SnO2纳米微晶的自组装,相互连接的管(薄片),固定的空心块茎(柱)和双层基质进一步构建了生物形态层次结构。得益于其较小的粒度和独特的层次结构,作为乙醇传感器的生物形态SnO2表现出高灵敏度(49.8至50 ppm乙醇)和快速响应/恢复时间(11/31 s至50 ppm乙醇),即使相对较低工作温度(170摄氏度)。

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