材料科学
异质结
丙酮
检出限
选择性
折射率
吸附
半导体
灵敏度(控制系统)
纳米材料
光电子学
化学工程
纳米技术
分析化学(期刊)
催化作用
色谱法
电子工程
生物化学
工程类
有机化学
化学
作者
Wei Liu,Yu Zheng,Zhe Wang,Zhixun Wang,Junfeng Yang,Mengxiao Chen,Qi Miao,Shafiq Ur Réhman,Perry Ping Shum,Zhu Luan,Lei Wei
标识
DOI:10.1002/admi.202001978
摘要
Abstract Combination of anti‐resonant hollow‐core fiber (HCF) and semiconductor nanomaterial is an effective strategy to obtain high‐performance gas sensors with exceptional sensitivity and low power consumption. However, controlling the semiconductor morphology onto HCF is a major challenge to achieve the desired gas sensor with the enhanced sensitivity. Here, a ZnO‐Bi 2 O 3 nanosheets (NSs) heterostructure is grown in situ on the surface of HCF by sol–gel and hydrothermal methods. ZnO‐Bi 2 O 3 NSs serving as electron acceptors trap electrons after acetone adsorption and then change the refractive index of the surface of HCF. Benefiting from the unique sheet structure and the synergetic effects for multi‐component, the resulting ZnO‐Bi 2 O 3 NSs enabled HCF gas sensor exhibits high sensitivity, selectivity, and repeatability for detecting acetone at room temperature, particularly in the low concentration range, with the theoretical limit of detection down to 140 parts‐per‐billion. Meanwhile, the successful application of the ZnO‐Bi 2 O 3 NSs enabled HCF gas sensor to distinguish the exhaled breath from the healthy individuals and simulated diabetic cases is demonstrated, which paves the way to achieve non‐invasive, ultra‐sensitivity gas sensing at room temperature for the early diagnosis of diabetes.
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