4.7 Article

Micro/Nano Gas Sensors: A New Strategy Towards In-Situ Wafer-Level Fabrication of High-Performance Gas Sensing Chips

Journal

SCIENTIFIC REPORTS
Volume 5, Issue -, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/srep10507

Keywords

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Funding

  1. National Basic Research Program of China [2012CB934102]
  2. National Science and Technology Supporting Program [2012BAJ11B01]
  3. Fund for Creative Research of National Natural Science Foundation of China [61321492]
  4. Key Project of National Natural Science Foundation of China [91323304, 91123037]
  5. Project for Shanghai Outstanding Academic leaders [15XD1504300]
  6. project of NSFC [61306143]
  7. Grants-in-Aid for Scientific Research [14F04340] Funding Source: KAKEN

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Nano-structured gas sensing materials, in particular nanoparticles, nanotubes, and nanowires, enable high sensitivity at a ppb level for gas sensors. For practical applications, it is highly desirable to be able to manufacture such gas sensors in batch and at low cost. We present here a strategy of in-situ wafer-level fabrication of the high-performance micro/nano gas sensing chips by naturally integrating microhotplatform (MHP) with nanopore array (NPA). By introducing colloidal crystal template, a wafer-level ordered homogenous SnO2 NPA is synthesized in-situ on a 4-inch MHP wafer, able to produce thousands of gas sensing units in one batch. The integration of micromachining process and nanofabrication process endues micro/nano gas sensing chips at low cost, high throughput, and with high sensitivity (down to similar to 20 ppb), fast response time (down to similar to 1 s), and low power consumption (down to similar to 30 mW). The proposed strategy of integrating MHP with NPA represents a versatile approach for in-situ wafer-level fabrication of high-performance micro/nano gas sensors for real industrial applications.

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