| Literature DB >> 34738668 |
Jingxian Zhang1,2,3, Fan Lv3, Zehui Li4,5, Guangya Jiang6, Meijuan Tan7, Menglei Yuan1,2, Qinghua Zhang8, Youpeng Cao7, Haoyun Zheng7, Lingling Zhang7, Cheng Tang9, Wangyang Fu6, Can Liu5, Kaihui Liu5, Lin Gu8, Jingkun Jiang4, Guangjin Zhang1,2, Shaojun Guo3.
Abstract
Electrochemical sensors for detecting micromolecule organics are desirable for improving the perception of environmental quality and human health. However, currently, the electrochemical sensors for formaldehyde are substantially limited on the market due to the long-term unsolved problems of the low electrooxidation efficiency and CO poisoning issue of commercial Pd catalysts. Here, a 2D Cr-doped Pd metallene (Cr-Pdene) with few atomic layers is shown as an advanced catalyst for ultrasensitive and selective sensing of formaldehyde via a highly efficient formaldehyde electrooxidation. It is found that the doping of Cr into Pd metallene can efficiently optimize the electronic structure of Pd and weaken the interaction between Pd and CO, providing an anti-poisoning means to favor CO2 production and suppress CO adsorption. The Cr-Pdene-based electrochemical sensor exhibits one order of magnitude higher detection range and, especially, much higher anti-interference for formaldehyde than that of the conventional sensors. Most importantly, it is demonstrated that the Cr-Pdene can be integrated into commercializable wireless sensor networks or handheld instruments for promising applications relating to the environment, health, and food.Entities:
Keywords: Cr doping; anti-CO ability; electrochemical sensors; formaldehyde oxidation reaction; metallene
Year: 2021 PMID: 34738668 DOI: 10.1002/adma.202105276
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849