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Schottky Contacts Regularized Linear Regression for Signal Inconsistency Circumvent in Resistive Gas Micro-Nanosensors.
Zhao, Yuxin; Su, Yue; Guo, Mengya; Liu, Liqun; Chen, Peng; Song, Anqi; Yu, Wei; Hu, Shi; Zhao, Rongjian; Fang, Zhen; Zhang, Huacheng; Zhao, Yanli; Liang, Wenjie.
Afiliação
  • Zhao Y; School of Chemical Engineering & Technology, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
  • Su Y; Beijing National Center for Condensed Matter Physics, Beijing Key Laboratory for Nanomaterials and Nanodevices, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
  • Guo M; College of Physical Science and Technology, Xiamen University, Xiamen, 361005, P. R. China.
  • Liu L; School of Chemical Engineering & Technology, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
  • Chen P; School of Chemical Engineering & Technology, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
  • Song A; Beijing National Center for Condensed Matter Physics, Beijing Key Laboratory for Nanomaterials and Nanodevices, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
  • Yu W; School of Chemical Engineering & Technology, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
  • Hu S; Beijing National Center for Condensed Matter Physics, Beijing Key Laboratory for Nanomaterials and Nanodevices, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
  • Zhao R; Department of Chemistry, School of Science, Tianjin Key Laboratory of Molecular Optoelectronic Science, Tianjin University, Tianjin, 300072, P. R. China.
  • Fang Z; Institute of Electronics, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
  • Zhang H; Institute of Electronics, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
  • Zhao Y; School of Chemical Engineering & Technology, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
  • Liang W; Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link, Singapore, 637371, Singapore.
Small Methods ; 5(12): e2101194, 2021 Dec.
Article em En | MEDLINE | ID: mdl-34928009
ABSTRACT
In the frontier resistive micro-nano gas sensors, the change rate reliability between the measured quantity and output signals has long been puzzled by the ineluctable device-to-device and run-to-run disparities. Here, a neotype sensing data interpretation method to circumvent these signal inconsistencies is reported. The method is based on discovery of a strong linear relation between the initial resistance in air (Ra ) and the absolute change in resistance after exposure to target gas (Ra -Rg ). Metal oxide gas sensors based on a micro-hot-plate are employed as the model system. The study finds that such correlation has a wide universality, even for devices incorporated with different sensing materials or under different gas atmosphere. Furthermore, this rule can also be extensible to graphene-based interdigital microelectrode. In situ probe scanning analyses illuminate that the linear dependence is closely related to work function matching level between metal electrode and sensitive layer. The Schottky barrier at metal-semiconductor junctions is the prominent parameter, whose height (ϕB ) can fundamentally impact material/electrode contact resistance, thereby further affecting the realistic nature expression of sensing materials. Using this correlation, a calibration procedure is proposed and embed in a fully integrated pocket-size sensor prototype, whose response outcomes demonstrated high credibility as compared to commercial apparatus.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Small Methods Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Small Methods Ano de publicação: 2021 Tipo de documento: Article