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Yb-Doped 3D Ordered Porous SnO2 With a Controllable Pore Size for ppb Level Formaldehyde Detection

机译:Yb掺杂的3D有序多孔SnO 2 具有可控孔径的PPB水平甲醛检测

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The pure and Yb-doped 3D ordered porous SnO2 with a controllable pore diameter (around 50 nm, 800 nm, and 1200 nm) were prepared by a simple template method. 3 at% Yb-doped 51.3 nm ordered porous SnO2 (51.3 nm SnO2/3%Yb) showed the largest specific surface area (70.08 m(2)/g) and the biggest oxygen vacancy in nitrogen adsorption-desorption and XPS analysis. The response of 51.3 nm SnO2/3%Yb is 95 against 50 ppm HCHO at 108 degrees C, which is 3.7 times higher than 1228.0 nm SnO2/3%Yb (27), 2.1 times higher than 806.0 nm SnO2/3%Yb (45), and 2.4 times higher pure 57.3 nm SnO2(40). However, the response of pure 57.3 nm SnO2 (40) is only 2.9 times higher than pure 1231.0 nm SnO2(13.5), and 1.2 times higher than pure 832.1.0 nm SnO2 (30). Especially, the detectable formaldehyde (HCHO) of 51.3 nm SnO2/3%Yb minimum limit has been reduced to 50 ppb and the relevant response is 3.5. Besides, 51.3 nm SnO2/3%Yb also exhibited high linearity (50 ppb-200 ppm), the fast response time (2 s) and excellent selectivity toward HCHO. Above all, for the same kinds of SnO2 nanomaterials, the smaller pore size is, the stronger sensitivity it will be, and under the effect of Yb doping, the gas sensitivity is enhanced more significantly with the decrease of the pore size. Besides, for the same kinds of SnO2 nanomaterials that have the same pore size, the gas-sensitive property is also significantly enhanced due to the doping of Yb.
机译:通过简单的模板方法制备具有可控孔径(约50nm,800nm和1200nm)的纯和Yb掺杂的3D有序多孔SnO 2。 3以%YB掺杂的51.3nm有序多孔SnO 2(51.3nm SnO 2/3%Yb)显示最大的比表面积(70.08m(2)/ g)和氮吸附 - 解吸和XPS分析中最大的氧空位。 51.3nm SnO2 / 3%Yb的响应为108℃,50ppm Hcho为50ppm,其高于1228.0 nm SnO2 / 3%Yb(27),高于806.0nm SnO2 / 3%Yb( 45),纯度纯度为2.4倍57.3nm SnO2(40)。然而,纯57.3nm snO2(40)的响应仅比纯1231.0nm snO2(13.5)高2.9倍,比纯832.1.0nm snO2(30)高1.2倍。特别是,51.3nm SnO2 / 3%Yb最小限度的可检测的甲醛(Hcho)降至50ppb,相关响应为3.5。此外,51.3nm SnO2 / 3%Yb还表现出高线性(50ppb-200ppm),快速响应时间(2 s)和对Hcho的优异选择性。最重要的是,对于相同种类的SnO2纳米材料,孔径较小,灵敏度较强,并且在YB掺杂的影响下,随着孔径的减小而言,气体敏感性更显着。此外,对于具有相同孔径的相同种类的SnO2纳米材料,由于YB的掺杂,气敏性也显着提高。

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