School of Light Industry and Food Engineering, Guangxi University, Nanning, 530004, P. R. China.
Adv Sci (Weinh). 2022 Oct;9(30):e2203428. doi: 10.1002/advs.202203428. Epub 2022 Aug 26.
Gas-sensitive materials are capable of dynamic identification and content monitoring of specific gases in the environment, and their applications in the field of gas sensing are promising. However, weak adsorption properties are the main challenge limiting the application of gas-sensitive materials. A highly adsorbent gas-sensitive cellulose nanofibril (CNF)-based triboelectric material with a layered structure is prepared here and it is applied to self-powered gas sensing. The layered structure of the triethoxy-1H,1H,2H,2H-tridecafluoro-n-octylsilane cellulose nanofiber (PFOTES-CNF)-based gas-sensitive material further enhances the adsorption of the material due to electrostatic adsorption in the electrostatic field induced by triboelectricity. It is found that the ammonia-sensitive material obtained by loading Ti C T in PFOTES-CNF has a fast response/recovery (12/14 s), high sensitivity response (V /V = 2.1), high selectivity response (37.6%), and low detection limit (10 ppm) for 100 ppm of ammonia gas. In addition, the ammonia-sensitive CNF-based triboelectric material can accurately identify NH concentration changes in the range of 10-120 ppm and transmit the signal wirelessly to the user interface, facilitating real-time online monitoring of NH in the environment. A novel strategy is provided here for designing and preparing high-performance gas-sensitive composites and the analysis of self-powered gas sensing is guided.
气敏材料能够动态识别和监测环境中特定气体的含量,在气体传感领域具有广阔的应用前景。然而,弱吸附性能是限制气敏材料应用的主要挑战。本文制备了一种具有分层结构的高吸附性纤维素纳米纤维(CNF)基摩擦电敏感材料,并将其应用于自供电气体传感。三乙氧基-1H,1H,2H,2H-全氟辛基硅烷纤维素纳米纤维(PFOTES-CNF)基气敏材料的分层结构进一步增强了材料的吸附能力,这是由于摩擦电诱导的静电场中的静电吸附所致。研究发现,在 PFOTES-CNF 中负载 TiC T 得到的氨敏材料对 100ppm 氨气的快速响应/恢复时间(12/14 s)、高灵敏度响应(V / V = 2.1)、高选择性响应(37.6%)和低检测限(10 ppm)。此外,基于 CNF 的氨敏摩擦电材料能够准确识别 10-120 ppm 范围内 NH 浓度的变化,并将信号无线传输到用户界面,便于对环境中的 NH 进行实时在线监测。本文为设计和制备高性能气敏复合材料提供了一种新策略,并指导了自供电气体传感的分析。