Punetha Deepak, Kar Manoranjan, Pandey Saurabh Kumar
Sensors and Optoelectronics Research Group (SORG), Department of Electrical Engineering, Indian Institute of Technology Patna, Bihar, 801103, India.
Department of Physics, Indian Institute of Technology Patna, Bihar, 801103, India.
Sci Rep. 2020 Feb 7;10(1):2151. doi: 10.1038/s41598-020-58965-w.
This paper reports on reduced graphene oxide (rGO), tin oxide (SnO) and polyvinylidene fluoride (PVDF) tertiary nanocomposite thick film based flexible gas sensor. The nanocomposite of 0.90(PVDF) - 0.10[x(SnO) - (1 - x)rGO] with different weight percentages (x = 0, 0.15, 0.30, 0.45, 0.6, 0.75, 0.90 and 1) have been prepared by the hot press method. Chromium (Cr) has been deposited on the surface by using E-beam evaporation system, which is used as electrode of the device. Crystal structure, morphology, and electrical characteristics of the device have been explored for the technological application. A correlation between crystallinity, morphology, and electrical properties with these thick films has also been established. The device has been tested at different hydrogen (H) gas concentration as well as at different response times. A superior response of 0.90(PVDF) - 0.10[0.75(SnO) - 0.25 rGO] nanocomposite thick film has been observed. Hence, this composition is considered as optimized tertiary nanocomposite for the hydrogen gas sensor application. The sensor response of 49.2 and 71.4% with response time 34 sec and 52 sec for 100 PPM and 1000 PPM H gas concentration respectively have been obtained. First time a new kind of low cost and flexible polymer based nanocomposite thick film gas sensor has been explored.
本文报道了基于还原氧化石墨烯(rGO)、氧化锡(SnO)和聚偏氟乙烯(PVDF)的三元纳米复合厚膜柔性气体传感器。采用热压法制备了不同重量百分比(x = 0、0.15、0.30、0.45、0.6、0.75、0.90和1)的0.90(PVDF)-0.10[x(SnO)-(1 - x)rGO]纳米复合材料。通过电子束蒸发系统在其表面沉积铬(Cr),用作器件的电极。为了技术应用,对该器件的晶体结构、形貌和电学特性进行了研究。还建立了这些厚膜的结晶度、形貌和电学性能之间的相关性。该器件在不同氢气(H)气体浓度以及不同响应时间下进行了测试。观察到0.90(PVDF)-0.10[0.75(SnO)-0.25 rGO]纳米复合厚膜具有优异的响应。因此,该组合物被认为是用于氢气传感器应用的优化三元纳米复合材料。对于100 PPM和1000 PPM的H气体浓度,分别获得了49.2%和71.4%的传感器响应,响应时间分别为34秒和52秒。首次探索了一种新型的低成本柔性聚合物基纳米复合厚膜气体传感器。