4.8 Article

Elaborate Manipulation for Sub-10 nm Hollow Catalyst Sensitized Heterogeneous Oxide Nanofibers for Room Temperature Chemical Sensors

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 9, Issue 29, Pages 24821-24829

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.7b02396

Keywords

hollow catalyst; sub-10 nm; room temperature; breath sensor; humidity

Funding

  1. center for Integrated Smart Sensors - Ministry of Science, ICT and Future Planning as Global Frontier Project [CISS-2011-0031870]
  2. National Research Foundation of Korea (NRF) - Ministry of Education [NRF-2016H1A2A1907718]
  3. Wearable Platform Materials Technology Center (WMC) - National Research Foundation of Korea (NRF) Grant of the Korean Government (MSIP) [2016R1A5A1009926]
  4. Ministry of Science, ICT & Future Planning as Biomedical Treatment Technology Development [2015M3A9D7067418]

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Room-temperature (RT) operation sensors are constantly in increasing demand because of their low power consumption, simple operation, and long lifetime. However, critical challenges such as low sensing performance, vulnerability under highly humid state, and poor recyclability hinder their commercialization. In this work, sub-10 nm hollow, bimetallic Pt-Ag nanoparticles (NPs) were successfully formed by galvanic replacement reaction in bioinspired hollow protein templates and sensitized on the multidimensional SnO2-WO3 heterojunction nanofibers (HNFs). Formation of hollow, bimetallic NPs resulted in the double-side catalytic effect, rendering both surface and inner side chemical reactions. Subsequently, SnO2-WO3 HNFs were synthesized by incorporating 2D WO3 nanosheets (NSs) with 0D SnO2 sphere by c-axis growth inhibition effect and fluid dynamics of liquid Sn during calcination. Hierarchically assembled HNFs effectively modulate surface depletion layer of 2D WO3 NSs by electron transfers from WO3 to SnO2 stemming from creation of heterojunction. Careful combination of bimetallic catalyst NPs with HNFs provided an extreme recyclability under exhaled breath (95 RH%) with, outstanding H2S sensitivity. Such sensing platform dearly distinguished between the breath of healthy people and simulated halitosis patients.

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