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Humidity Sensing Properties of Halogenated Graphene: A Comparison of Fluorinated Graphene and Chlorinated Graphene

机译:卤代石墨烯的湿度传感特性:氟化石墨烯和氯化石墨烯的比较

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This work presents a comparison of humidity sensing properties of fluorinated graphene (FG) and chlorinated graphene (ClG), using experimental data and atomic-level ab-initio simulations. The fabrication of the humidity sensor included drop-casting FG and ClG suspensions on silver (Ag)based interdigitated electrodes (IDEs) to form the sensing layer. The sensitivity of FG and ClG to humidity variations was investigated by measurement of relative resistance change ($Delta R/R_{b}$) of the fabricated humidity sensors when the relative humidity (RH) was changed from 20% to 80%, in steps of 10%, at a constant temperature of 24° C. For RH transition from 20% to 80%, the $Delta R/R_{b}$ of the FG-based and the ClG-based humidity sensors were measured as 13.3% and 10.8%, respectively, resulting in a sensitivity of 0.22%/%RH and 0.18%/%RH, respectively. Density functional theory (DFT) calculations showed adsorption energy (Eads) of -0.50 eV and -0.43 eV for the physisorption of water molecules on the FG and ClG, respectively, demonstrating the higher sensitivity of the FG to humidity. The density of states (DOS) calculations showed that the water-adsorbed FG has a larger DOS near the Fermi level when compared to water-adsorbed ClG, which can be attributed to the stronger interaction and more effective charge transfer between the FG and the water molecule.
机译:这项工作使用实验数据和原子级从头算模拟,比较了氟化石墨烯(FG)和氯化石墨烯(ClG)的湿度传感特性。湿度传感器的制造包括在基于银(Ag)的叉指式电极(IDE)上滴铸FG和ClG悬浮液,以形成传感层。通过测量相对湿度(RH)从20%变为80%时制造的湿度传感器的相对电阻变化($ \ Delta R / R_ {b} $),研究了FG和ClG对湿度变化的敏感性,在20°C的恒定温度下,以10%为步长。为了将RH从20%转换为80%,对基于FG和基于ClG的湿度传感器的$ Delta R / R_ {b} $进行了测量分别为13.3%和10.8%,灵敏度分别为0.22%/%RH和0.18%/%RH。密度泛函理论(DFT)计算显示了吸附能(E 广告 )-0.50 eV和-0.43 eV分别表示FG和ClG上水分子的物理吸附,表明FG对湿度的敏感性更高。状态密度(DOS)计算表明,与水吸附的ClG相比,水吸附的FG在费米能级附近具有更大的DOS,这可以归因于FG与水之间更强的相互作用和更有效的电荷转移分子。

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