Kalsoom Umme, Waheed Sidra, Paull Brett
ARC Centre of Excellence for Electromaterials Science (ACES), College of Sciences and Engineering , University of Tasmania , Hobart 7001 , Australia.
Australian Centre for Research on Separation Science (ACROSS), College of Sciences and Engineering , University of Tasmania , Hobart 7001 , Australia.
ACS Appl Mater Interfaces. 2020 Jan 29;12(4):4962-4969. doi: 10.1021/acsami.9b22519. Epub 2020 Jan 16.
Humidity sensing is of significant interest to monitor and control the moisture sensitive environments. Here, we developed a novel 3D printable composite consisting of boron-doped diamond (BDD) (60 wt %) and LiCl (2 wt %) in acrylonitrile butadiene styrene (ABS). SEM analysis of the composite material confirmed the uniform distribution of the BDD and presence of a thin layer of LiCl distributed throughout the matrix. The developed composite material was employed for simple and quick (∼2 min) fabrication of the humidity sensor using low cost fused deposition modeling (FDM) 3D printer. The unique composite material allowed the fabrication of one-piece 3D printed sensor in comparison to traditional multicomponent (e.g., support, sensitive film, and electrodes) humidity sensing devices. The resulting humidity sensor showed excellent sensitivity with up to 125-fold change in resistance for the range of 11-97% relative humidity. The quick response (60 s, = 3, RSD= 18.7%) and the recovery time (120 s, = 3, RSD = 16.6%) is attributed to the uniform distribution of the BDD electrode material and strong networking with the LiCl layer distributed throughout the matrix. Long-term stability and repeatability was evaluated, with relative standard deviation of the response of less than 15% obtained over a test period of 14 days. When applied as a sensor for humidity in human breath, the response curves obtained for 12 consecutive breath cycles with post-breath compressed air-drying, showed excellent repeatability and sensitivity, with quick response and recovery (13 s, = 12, RSD = 15%). The developed 3D printable humidity sensing material was also used to fabricate a customized 3D printed sensor for monitoring the humidity of the N supply.
湿度传感对于监测和控制对湿度敏感的环境具有重要意义。在此,我们开发了一种新型的3D可打印复合材料,该材料由硼掺杂金刚石(BDD)(60重量%)和LiCl(2重量%)组成,分散于丙烯腈-丁二烯-苯乙烯(ABS)中。对该复合材料的扫描电子显微镜(SEM)分析证实了BDD的均匀分布以及在整个基体中分布着一层薄薄的LiCl。所开发的复合材料被用于使用低成本的熔融沉积建模(FDM)3D打印机简单快速地(约2分钟)制造湿度传感器。与传统的多组分(例如支撑体、敏感膜和电极)湿度传感装置相比,这种独特的复合材料使得能够制造一体式3D打印传感器。所得的湿度传感器表现出优异的灵敏度,在11 - 97%相对湿度范围内电阻变化高达125倍。快速响应(60秒,n = 3,相对标准偏差(RSD)= 18.7%)和恢复时间(120秒,n = 3,RSD = 16.6%)归因于BDD电极材料的均匀分布以及与分布在整个基体中的LiCl层的强网络连接。评估了长期稳定性和重复性,在14天的测试期内获得了小于15%的响应相对标准偏差。当用作人体呼出气体湿度传感器时,在呼气后用压缩空气干燥的情况下,连续12个呼吸周期获得的响应曲线显示出优异的重复性和灵敏度,具有快速响应和恢复(13秒,n = 12,RSD = 15%)。所开发的3D可打印湿度传感材料还被用于制造定制的3D打印传感器,用于监测氮供应的湿度。