Skip navigation
  • Logo
  • Home
  • Communities
    & Collections
  • Research Outputs
  • Researchers
  • Projects
  • Explore by
    • Research Outputs
    • Researchers
    • Projects
  • Sign on to:
    • My DSpace
    • Receive email
      updates
    • Edit Account details
FFH logo

  1. RePhyChem
  2. Research Outputs
  3. Journal Article
Please use this identifier to cite or link to this item: https://dspace.ffh.bg.ac.rs/handle/123456789/2621
Title: Flexible gas sensor based on laser-induced graphene and cobalt phthalocyanine-MWCNTs composite for methanol detection at room temperature
Authors: Lu, Tianqi
Adiraju, Anurag
Lyu, Ankang
Cui, Zheyu
Shi, Ge
Al-Hamry, Ammar
Pašti, Igor 
Kanoun, Olfa
Keywords: Cobalt phthalocyanine;Flexible sensors;Laser-induced graphene;Methanol gas sensor;MWCNTs;Room temperature detection
Issue Date: 1-Apr-2025
Journal: Emergent Materials
Abstract: 
Methanol, a toxic volatile compound, poses significant threats to human health and the environment. Traditional methanol sensors require high operating temperatures, exhibit poor selectivity, and have limited long-term stability, which restricts their application in portable methanol monitoring devices. This study proposes a flexible chemoresistive gas sensor based on laser-induced graphene (LIG) electrodes and a cobalt phthalocyanine (CoPc)- multi-walled carbon nanotubes (MWCNT) composite. Experimental results demonstrate that the sensor achieves an excellent sensitivity of 0.589 Ω/ppm and a low limit of detection of 165 ppb over a wide detection range of 10–1000 ppm, covering international methanol exposure limits. Moreover, the sensor exhibits high selectivity towards methanol in comparison to other interfering volatile organic compounds (e.g., ethanol, isopropanol, and acetone). Under 500 ppm methanol, the response time (τ45) is 5 s, the recovery time (τ85) is 108 s, and the hysteresis is only 2.77%. The synergistic effects of the three-dimensional porous structure of LIG, the high conductivity of MWCNT, and the electron transfer characteristics between CoPc and methanol molecules collectively optimize charge transport and gas adsorption efficiency, enabling the sensor to achieve excellent methanol sensing performance at room temperature. Additionally, it shows also outstanding long-term stability over 30 days, with a performance degradation rate of less than 4.25%. These attributes indicate that the LIG-CoPc/MWCNT sensor holds great potential in industrial safety and environmental monitoring applications while providing critical technological support for the development of high-performance, low-power methanol gas sensors.
URI: https://dspace.ffh.bg.ac.rs/handle/123456789/2621
ISSN: 25225731
DOI: 10.1007/s42247-024-00986-6
Appears in Collections:Journal Article

Show full item record

SCOPUSTM   
Citations

4
checked on Dec 21, 2025

Page view(s)

5
checked on Dec 24, 2025

Google ScholarTM

Check

Altmetric

Altmetric


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.


Explore by
  • Communities
    & Collections
  • Research Outputs
  • Researchers
  • Projects
University of Belgrade
Faculty of Physical Chemistry
Studentski trg 12-16
11158 Belgrade 118
PAC 105305
SERBIA
University of Belgrade Faculty of Physical Chemistry