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Parametrically Engineered Laser-Induced Graphene with Tunable Electrical and Morphological Properties for Flexible
Faizan Tariq Beigh1, Nadeem Tariq Beigh2, Dhiman Mallick1
1Department of Electrical Engineering, Indian Institute of Technology Delhi, Hauz Khas, New Delhi 110016, India.
ACS Omega
|August 1, 2026
Summary
Researchers optimized laser-induced graphene (LIG) fabrication for flexible electronics by controlling laser parameters. This resulted in high-quality, conductive LIG suitable for advanced sensors and heaters.
Area of Science:
- Materials Science
- Nanotechnology
- Flexible Electronics
Background:
- Laser-induced graphene (LIG) offers a scalable method for creating 3D porous graphene on polymers.
- Reproducible control of LIG's electrical and structural properties is difficult due to complex laser parameters.
Purpose of the Study:
- To systematically investigate how laser power, scan speed, DPI, EPUA, and DOF affect LIG properties.
- To optimize LIG fabrication for high-quality, conductive graphene on polyimide substrates.
- To demonstrate LIG's potential in flexible electronic devices.
Main Methods:
- Fabrication of LIG on polyimide using a laser system.
- Systematic variation of laser processing parameters (power, scan speed, DPI, EPUA, DOF).
- Characterization of LIG morphology, crystallinity (ID/IG ratio, La), and conductivity (sheet resistance).
- Fabrication and testing of LIG-based flexible piezoresistive sensors and electrothermal heaters.
Main Results:
- Optimized LIG achieved excellent structural quality (ID/IG ~ 0.25, La ~ 76 nm) and low sheet resistance (~10 Ω/□).
- Flexible pressure sensors showed distinct sensitivity regimes, low detection limit (~150 mN), and minimal hysteresis (~5-6%).
- LIG microheaters reached 201 °C in 6.2 s at 6.5 V, demonstrating high heating efficiency.
Conclusions:
- A framework for engineering high-quality, tunable LIG properties was established.
- LIG shows significant potential for scalable, low-power, multifunctional flexible electronic applications.
- Deformation-induced modulation of conductive pathways governs the piezoresistive behavior in LIG sensors.
