材料科学
介孔材料
锌
多孔性
选择性
检出限
胆甾液晶
化学工程
分子
纳米技术
比表面积
氨
氧化物
响应时间
液晶
多孔介质
金属有机骨架
Crystal(编程语言)
电子转移
吸附
制作
纳米传感器
混合材料
氨气
纳米晶
无机化学
纳米-
作者
Ramadevi Suguru Pathint,Krishnakanth Chithari,Sourav Deb,Y. Ashok Kumar Reddy,Jayalakshmi Vallamkondu
出处
期刊:ChemPhysChem
[Wiley]
日期:2025-11-11
卷期号:: e202500210-e202500210
标识
DOI:10.1002/cphc.202500210
摘要
Hybrid material architectures emerge as a transformative approach to enhance the performance of gas sensors. This study reports a novel room‐temperature ammonia (NH 3 ) sensor based on a porous zinc oxide nanoflakes (ZnOP) and polymer‐dispersed cholesteric liquid crystal (PDCLC) composite. The hybrid design integrates the high surface area and mesoporous architecture of ZnO with the functional interfacial properties of PDCLC, yielding a material system that excels in both response and selectivity. The sensor demonstrates exceptional performance metrics, including a broad detection range (1–100 ppm), a low detection limit of 2.61 ppm, and rapid response and recovery times of 5 and 18 s, respectively. Notably, the sensor exhibits superior selectivity toward NH 3 over other volatile organic gases, attributed to the tailored interaction between ammonia molecules and the PDCLC matrix. Moreover, the synergistic interplay between ZnOP and PDCLC enhances electron transfer dynamics, further improving sensing efficiency. This work underscores the potential of porous ZnOP/PDCLC hybrids as advanced materials for ppm‐level NH 3 detection and establishes a robust platform for designing high‐performance gas sensors operable at room temperature.
科研通智能强力驱动
Strongly Powered by AbleSci AI