石墨烯
电子鼻
材料科学
甲醇
制作
酮
纳米技术
炸薯条
混合(物理)
光电子学
化学工程
计算机科学
有机化学
化学
电信
病理
替代医学
工程类
物理
医学
量子力学
作者
Maxim K. Rabchinskii,Victor V. Sysoev,Alexey S. Varezhnikov,Maksim A. Solomatin,Nikolai S. Struchkov,Dina Yu. Stolyarova,Sergei A. Ryzhkov,Grigorii A. Antonov,Vladimir S. Gabrelian,Polina D. Cherviakova,М. В. Байдакова,A. O. Krasnova,Maria Brzhezinskaya,S. I. Pavlov,Demid A. Kirilenko,Vitaliy A. Kislenko,С. В. Павлов,Sergey A. Kislenko,P. N. Brunkov
标识
DOI:10.1021/acsami.3c02833
摘要
The artificial olfaction units (or e-noses) capable of room-temperature operation are highly demanded to meet the requests of society in numerous vital applications and developing Internet-of-Things. Derivatized 2D crystals are considered as sensing elements of choice in this regard, unlocking the potential of the advanced e-nose technologies limited by the current semiconductor technologies. Herein, we consider fabrication and gas-sensing properties of On-chip multisensor arrays based on a hole-matrixed carbonylated (C-ny) graphene film with a gradually changed thickness and concentration of ketone groups of up to 12.5 at.%. The enhanced chemiresistive response of C-ny graphene toward methanol and ethanol, of hundred ppm concentration when mixing with air to match permissible exposure OSHA limits, at room-temperature operation is signified. Following thorough characterization via core-level techniques and density functional theory, the predominant role of the C-ny graphene-perforated structure and abundance of ketone groups in advancing the chemiresistive effect is established. Advancing practice applications, selective discrimination of the studied alcohols is approached by linear discriminant analysis employing a multisensor array's vector signal, and the fabricated chip's long-term performance is shown.
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