Shinya Kano, Jin Kawakita, Shohei Yamashita, H. Mekaru
{"title":"Water Vapor Condensation in Nanoparticle Films: Physicochemical Analysis and Application to Rapid Vapor Sensing","authors":"Shinya Kano, Jin Kawakita, Shohei Yamashita, H. Mekaru","doi":"10.3390/chemosensors11110564","DOIUrl":null,"url":null,"abstract":"Nanomaterial-based humidity sensors hold great promise for water vapor detection because of their high sensitivity and fast response/recovery. However, the condensation of water in nanomaterial films remains unclear from a physicochemical perspective. Herein, the condensation of water vapor in silica nanoparticle films was physicochemically analyzed to bridge the abovementioned gap. The morphology of surface-adsorbed water molecules was characterized using infrared absorption spectroscopy and soft X-ray absorption spectroscopy, and the effect of RH on the amount of adsorbed water was observed using a quartz crystal microbalance. The adsorbed water was found to exist in liquid- and ice-like states, which contributed to high and low conductivity, respectively. The large change in film impedance above 80% RH was ascribed to the condensation of water between the nanoparticles. Moreover, RH alteration resulted in a colorimetric change in the film’s interference fringe. The obtained insights were used to construct a portable device with response and recovery times suitable for the real-time monitoring of water vapor. Thus, this study clarifies the structure of water adsorbed on nanomaterial surfaces and, hence, the action mechanism of the corresponding nanoparticle-based sensors, inspiring further research on the application of various nanomaterials to vapor sensing.","PeriodicalId":10057,"journal":{"name":"Chemosensors","volume":"14 4","pages":""},"PeriodicalIF":3.7000,"publicationDate":"2023-11-14","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Chemosensors","FirstCategoryId":"5","ListUrlMain":"https://doi.org/10.3390/chemosensors11110564","RegionNum":3,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"CHEMISTRY, ANALYTICAL","Score":null,"Total":0}
引用次数: 0
Abstract
Nanomaterial-based humidity sensors hold great promise for water vapor detection because of their high sensitivity and fast response/recovery. However, the condensation of water in nanomaterial films remains unclear from a physicochemical perspective. Herein, the condensation of water vapor in silica nanoparticle films was physicochemically analyzed to bridge the abovementioned gap. The morphology of surface-adsorbed water molecules was characterized using infrared absorption spectroscopy and soft X-ray absorption spectroscopy, and the effect of RH on the amount of adsorbed water was observed using a quartz crystal microbalance. The adsorbed water was found to exist in liquid- and ice-like states, which contributed to high and low conductivity, respectively. The large change in film impedance above 80% RH was ascribed to the condensation of water between the nanoparticles. Moreover, RH alteration resulted in a colorimetric change in the film’s interference fringe. The obtained insights were used to construct a portable device with response and recovery times suitable for the real-time monitoring of water vapor. Thus, this study clarifies the structure of water adsorbed on nanomaterial surfaces and, hence, the action mechanism of the corresponding nanoparticle-based sensors, inspiring further research on the application of various nanomaterials to vapor sensing.
基于纳米材料的湿度传感器具有高灵敏度和快速响应/恢复的特点,因此在水蒸气检测方面大有可为。然而,从物理化学角度来看,水在纳米材料薄膜中的凝结仍不清楚。本文从物理化学角度分析了水蒸气在二氧化硅纳米粒子薄膜中的凝结,以弥补上述不足。利用红外吸收光谱和软 X 射线吸收光谱表征了表面吸附水分子的形态,并利用石英晶体微天平观察了相对湿度对吸附水量的影响。研究发现,吸附的水以液态和冰态存在,这两种状态分别导致了高电导率和低电导率。当相对湿度超过 80% 时,薄膜阻抗会发生很大变化,这是因为纳米粒子之间的水凝结了。此外,相对湿度的变化导致薄膜干涉条纹的比色变化。我们利用所获得的启示构建了一种便携式装置,其响应时间和恢复时间均适合水蒸气的实时监测。因此,本研究阐明了纳米材料表面吸附水的结构,进而阐明了相应的基于纳米粒子的传感器的作用机理,激发了人们进一步研究各种纳米材料在水蒸气传感中的应用。
期刊介绍:
Chemosensors (ISSN 2227-9040; CODEN: CHEMO9) is an international, scientific, open access journal on the science and technology of chemical sensors published quarterly online by MDPI.The journal is indexed in Scopus, SCIE (Web of Science), CAPlus / SciFinder, Inspec, Engineering Village and other databases.