4.8 Article

End Group Modification for Black Phosphorus: Simultaneous Improvement of Chemical Stability and Gas Sensing Performance

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 42, 页码 50270-50280

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c16776

关键词

black phosphorus; end group modification; extended stability; gas sensing; humidity independence

资金

  1. National Natural Science Foundation of China [51702084]
  2. Natural Science Foundation of Hebei Province of China [E2018202179, E2021202019, C2021202002]

向作者/读者索取更多资源

Modifying the end groups of black phosphorus (BP) nanosheets through silanization treatment can enhance their chemical stability in humid environments, leading to improved gas sensing performance, particularly in the detection of NO2. Such modification with fluoroalkylsilane results in a 3.9-fold increase in sensitivity to NO2 and stable sensing response under varying relative humidity conditions.
Black phosphorus (BP) nanosheets have been receiving attention for gas sensing showing superior sensitivity and selectivity among various two-dimensional materials. However, the instability of BP nanosheets due to chemical degradation, especially in humid environments, has severely limited their potential applications. Here, we propose to control the chemical stability of BP nanosheets through modifying their end groups via silanization treatment. Compared with other chemical passivation methods, the end group modification strategy proposed here can be well-controlled and results in little variation in the electronic structure of the puckered phosphorus plane. The results show that modification with fluoroalkylsilane leads the hydrophilic BP to become hydrophobic and exhibits extended chemical stability in oxidizing, humid environments. The sensitivity of fluoroalkylsilane-modified BP (F-BP) to NO2 improved by 3.9-fold in comparison with that of pristine BP nanosheets. More importantly, the NO2 sensing response could remain stable under changing relative humidity ranging from 5% to 95%. Such excellent sensing performance is ascribed to the strong interaction between NO2 and BP decorated with fluoroalkylsilane, as confirmed by density functional theory calculations. This work offers an effective means for preventing degradation of BP in ambient environments and provides a promising solution to solve the issue regarding humidity dependence in gas sensors.

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