Lawaniya Shiv Dutta, Kumar Sanjay, Yu Yeontae, Awasthi Kamlendra
Department of Physics, Malaviya National Institute of Technology Jaipur, Jaipur, 302017, Rajasthan, India.
Division of Advanced Materials Engineering, Jeonbuk National University, 567, Baekje-Daero, Deokjin-Gu, Jeonju, 54896, South Korea.
Sci Rep. 2024 Apr 4;14(1):7904. doi: 10.1038/s41598-024-57153-4.
One of the frontier research areas in the field of gas sensing is high-performance room temperature-based novel sensing materials, and new family of low-cost and eco-friendly carbon nanomaterials with a unique structure has attracted significant attention. In this work, we propose a novel low-cost flexible room temperature ammonia gas sensor based on nitrogen-doped carbon nano-onions/polypyrrole (NCNO-PPy) composite material mounted low-cost membrane substrate was synthesized by combining hydrothermal and in-situ chemical polymerization methods. The proposed flexible sensor revealed high sensing performance when employed as the sensing material for ammonia detection at room temperature. The NCNO-PPy ammonia sensor exhibited 17.32% response for 100 ppm ammonia concentration with a low response time of 26 s. The NCNO-PPy based flexible sensor displays high selectivity, good repeatability, and long-term durability with 1 ppm as the lower detection limit. The proposed flexible sensor also demonstrated remarkable mechanical robustness under extreme bending conditions, i.e., up to 90° bending angle and 500 bending cycles. This enhanced sensing performance can be related to the potential bonding and synergistic interaction between nitrogen-doped CNOs and PPy, the formation of defects from nitrogen doping, and the presence of high reactive sites on the surface of NCNO-PPy composites. Additionally, the computational study was performed on optimized NCNO-PPy nanocomposite for both with and without NH interaction. A deeper understanding of the sensing phenomena was proposed by the computation of several electronic characteristics, such as band gap, electron affinity, and ionization potential, for the optimized composite.
气体传感领域的前沿研究领域之一是基于高性能室温的新型传感材料,具有独特结构的低成本且环保的新型碳纳米材料家族引起了广泛关注。在这项工作中,我们提出了一种基于氮掺杂碳纳米洋葱/聚吡咯(NCNO-PPy)复合材料的新型低成本柔性室温氨气传感器,该复合材料安装在低成本的膜基板上,通过水热法和原位化学聚合法相结合合成。所提出的柔性传感器在室温下用作氨气检测的传感材料时表现出高传感性能。NCNO-PPy氨气传感器对100 ppm氨气浓度的响应率为17.32%,响应时间短至26秒。基于NCNO-PPy的柔性传感器具有高选择性、良好的重复性和长期耐久性,最低检测限为1 ppm。所提出的柔性传感器在极端弯曲条件下,即高达90°的弯曲角度和500次弯曲循环下,也表现出显著的机械稳健性。这种增强的传感性能可能与氮掺杂的CNOs和PPy之间的潜在键合和协同相互作用、氮掺杂形成的缺陷以及NCNO-PPy复合材料表面存在的高活性位点有关。此外,对优化后的NCNO-PPy纳米复合材料在有无NH相互作用的情况下进行了计算研究。通过计算优化复合材料的几个电子特性,如带隙、电子亲和能和电离势,对传感现象有了更深入的理解。